
==== Front
Genetics
Genetics
genetics
Genetics
0016-6731
1943-2631
Oxford University Press US

37616582
10.1093/genetics/iyad125
iyad125
YeastBook
Genome Organization and Integrity
AcademicSubjects/SCI01180
AcademicSubjects/SCI01140
Meiosis in budding yeast
Börner G Valentin Center for Gene Regulation in Health and Disease (GRHD), Department of Biological, Geological and Environmental Sciences, Cleveland State University, Cleveland, OH 44115, USA

Hochwagen Andreas Department of Biology, New York University, New York, NY 10003, USA

MacQueen Amy J Department of Molecular Biology and Biochemistry, Wesleyan University, Middletown, CT 06459, USA

Rothstein R Editor
Corresponding author: Email: g.boerner@csuohio.edu
G Valentin Börner, Andreas Hochwagen and Amy J MacQueen contributed equally to this work.

Conflicts of interest statement The author(s) declare no conflict of interest.

10 2023
24 8 2023
24 8 2023
225 2 iyad12527 10 2022
13 6 2023
24 8 2023
© The Author(s) 2023. Published by Oxford University Press on behalf of The Genetics Society of America.
2023
https://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.

Abstract

Meiosis is a specialized cell division program that is essential for sexual reproduction. The two meiotic divisions reduce chromosome number by half, typically generating haploid genomes that are packaged into gametes. To achieve this ploidy reduction, meiosis relies on highly unusual chromosomal processes including the pairing of homologous chromosomes, assembly of the synaptonemal complex, programmed formation of DNA breaks followed by their processing into crossovers, and the segregation of homologous chromosomes during the first meiotic division. These processes are embedded in a carefully orchestrated cell differentiation program with multiple interdependencies between DNA metabolism, chromosome morphogenesis, and waves of gene expression that together ensure the correct number of chromosomes is delivered to the next generation. Studies in the budding yeast Saccharomyces cerevisiae have established essentially all fundamental paradigms of meiosis-specific chromosome metabolism and have uncovered components and molecular mechanisms that underlie these conserved processes. Here, we provide an overview of all stages of meiosis in this key model system and highlight how basic mechanisms of genome stability, chromosome architecture, and cell cycle control have been adapted to achieve the unique outcome of meiosis.

YeastBook
meiosis
budding yeast
review
recombination
synaptonemal complex
chromosome segregation
cell cycle control
checkpoint
==== Body
pmcIntroduction

Meiosis is the specialized cell division program used by sexually reproducing organisms to reduce their chromosome number by half, generating haploid gametes. To achieve this unique reduction in chromosome number, meiotic cells replicate their genome and then undergo two consecutive nuclear divisions without an intervening S phase. Ploidy is reduced during the meiosis I division, when homologous parental chromosomes (homologs) segregate from one another. Meiosis II is a mitosis-like division that separates sister chromatids.

Meiosis and mitosis exhibit many commonalities, prompting the idea that meiosis could be evolutionarily derived from mitosis (Wilkins and Holliday 2009). Yet, several key features of meiosis are not part of the mitotic program. When compared to mitosis, the meiotic program has evolved at least four key modifications:

(i) Homolog pairing and synapsis. As a prerequisite for their reductional segregation, homologous chromosomes physically pair during meiosis. Pairing is reinforced by the assembly of the synaptonemal complex (SC), a zipper-like structure that connects the proteinaceous axes of homologs along their entire length (Page and Hawley 2004).

(ii) Recombination. During mitosis, cohesion between sister chromatids provides a counterforce to microtubules from opposite spindle poles, thereby generating the tension needed for bipolar attachment and accurate segregation of sister chromatids (Marston 2014). During meiosis I, functionally equivalent connections between homologs are provided by inter-homolog crossovers in combination with sister-chromatid cohesion. Crossovers arise from the programmed induction, and repair, via homologous recombination, of a large number of DNA double-strand breaks (DSBs). While primarily serving a critical mechanistic function in chromosome segregation, crossovers also have an important evolutionary role because the resulting new allele combinations increase genetic diversity in offspring.

(iii) Stepwise loss of cohesion and kinetochore architecture. In mitotic cells at metaphase, the sister kinetochores of replicated chromosomes are bioriented, and inter-sister cohesion is lost along the entire length of chromosomes at the metaphase-anaphase transition. During the metaphase-anaphase transition of meiosis I, each pair of sister kinetochores is co-oriented, and cohesion along chromosome arms is selectively eliminated. Pericentromeric sister chromatid cohesion, by contrast, is protected during meiosis I, to be eliminated only during meiosis II. These modifications ensure that homologs segregate during meiosis I, whereas sister-chromatids segregate during meiosis II (Marston 2014).

(iv) Replication suppression prior to meiosis II. During meiosis, one round of replication is followed by two rounds of chromosome segregation. To achieve this unusual cell cycle pattern, replication initiation must be suppressed between meiosis I and meiosis II (Benjamin et al. 2003; Phizicky et al. 2018).

All four meiosis-specific modifications are conserved among sexually reproducing eukaryotes (Ramesh et al. 2005). Meiosis furthermore is typically embedded within a larger program of gametogenesis that either packages the meiotic products for fertilization or prepares them for the haploid phase of the life cycle. In Saccharomyces cerevisiae, meiosis is integrated with a starvation response and a developmental process that encapsulates the four gametes with stress-resistant cell walls to form a tetrad of spores inside an ascus (Neiman 2011).

The budding yeast S. cerevisiae has become a major model for meiosis research due to several key features. (i) Most budding yeast genes central to meiosis are conserved among sexually reproducing organisms, including animals, plants and fungi (Ramesh et al. 2005). (ii) Near synchronous meiosis can be induced in large cultures by simple manipulation of nutritional conditions (Börner and Cha 2015). (iii) The four haploid spore products of meiosis remain connected as a tetrad, allowing the investigator to isolate and analyze all products of a single meiosis. (iv) Spores resume haploid growth allowing ready analyses of genotypes and phenotypes. (v) Events of chromosome morphogenesis and the localization of chromosomal proteins can be observed using immunofluorescence microscopy of surface-spread or live cells (Sym et al. 1993; Koszul et al. 2008). (vi) Recombination intermediates and products can be directly monitored by physical analysis of DNA molecules containing recombination hotspots (Ahuja and Borner 2011). Importantly, these tools and features of the budding yeast experimental system allow one to assess, in the same cell population, transitions in global chromosome architecture as well as the molecular events that occur between DNA duplexes (Kim et al. 2010).

In describing our current understanding of the molecular processes that underpin meiosis, this review will largely follow the temporal order outlined in Fig. 1 while considering causal relationships between parallel processes in DNA metabolism and chromosome morphogenesis. We place particular emphasis on meiotic prophase I, the extended cell-cycle stage when many meiosis-specific patterns are established, and the two meiotic nuclear divisions, when functional outcomes of these patterns are realized.

Fig. 1. Timeline of meiosis. Top panels show changes in chromosome number and recombination as cells progress from premeiotic DNA replication, through meiotic prophase I into the two meiotic divisions. A diploid mother cell ultimately gives rise to an ascus-enclosed tetrad of four genetically distinct haploid spores. Lower panels schematically depict changes in a) chromosome alignment and compaction, b) intermediate stages of recombination, and c) chromosome positioning during the stages of meiotic prophase I.

Meiotic entry and pre-meiotic S phase

The meiotic program is initiated by a major wave of gene expression mediated by the master transcriptional regulator Ime1 and its co-activator Ume6 (Kassir et al. 1988, 2003; Mandel et al. 1994; Rubin-Bejerano et al. 1996). IME1 activation involves a number of integrated intrinsic and extrinsic cues, including mating-type heterozygosity, low nutrient availability, and mitochondrial activity, to ensure that only respiration-competent diploid cells under severe nutrient limitation activate the meiotic program (Simchen and Kassir 1989; Treinin and Simchen 1993; Jambhekar and Amon 2008; Weidberg et al. 2016). Ime1/Ume6 induce starvation response genes and factors involved in pre-meiotic replication, recombination, and chromosome morphogenesis (Chu et al. 1998; Primig et al. 2000).

Several additional layers of regulation fine-tune meiotic entry. First, although rare in the yeast genome, introns can be found in multiple meiosis-specific genes (Juneau et al. 2007). While primary transcripts of these genes are detectable in premeiotic cells, splicing of their introns tends to be meiosis-specific and depends on the meiotic splicing activator Mer1, thereby ensuring that mature transcripts are restricted to meiosis (Engebrecht et al. 1991). Second, Ime1 induces the expression of numerous non-coding transcripts (Brar et al. 2012; Kim Guisbert et al. 2012). In several cases, production of these non-coding transcripts impedes the expression of overlapping genes, and thus allows Ime1 to also downregulate genes (Chen et al. 2017; Chia et al. 2017). Finally, the m6A methyltransferase Ime4 mediates large-scale methylation of meiotic mRNAs (Clancy et al. 2002; Schwartz et al. 2013). Methylation in the 3′ untranslated region of IME1 mRNA counters binding of the meiotic repressor Rme1, which increases IME1 transcript levels and locks cells into the meiotic program (Shah and Clancy 1992; Agarwala et al. 2012; Bushkin et al. 2019).

In the fast sporulating “SK1” yeast strain background, premeiotic S phase initiates within about an hour of exposing diploids to severe starvation (Cha et al. 2000), whereas this transition is substantially slower and less synchronous in other strain backgrounds commonly used for meiosis research, such as “BR2495” (Sym et al. 1993). Pre-meiotic DNA replication is similar to vegetative replication in that it uses the general replication machinery, initiates largely at the same origins, and requires Dbf4-dependent kinase (DDK) (Collins and Newlon 1994; Valentin et al. 2006; Mori and Shirahige 2007; Blitzblau et al. 2012). However, the regulation of cyclin-dependent kinase (CDK) is altered in several ways during meiosis. Unlike in vegetative cells, the initiation of pre-meiotic DNA replication depends absolutely on the S-phase cyclins Clb5 and Clb6 (Stuart and Wittenberg 1998). Moreover, the CDK-like meiotic kinase Ime2 replaces the G1-CDKs (Cdc28-Cln1-3) in mediating the proteasomal degradation of the CDK inhibitor Sic1 (Dirick et al. 1998; Benjamin et al. 2003). This independence from G1 cyclins ensures that meiotic cells do not undergo bud formation (Colomina et al. 1999). The low nucleotide availability under starvation conditions and concurrent initiation of changes in chromosome morphology cause replication in meiotic cells to be slower and less synchronous compared to vegetative cells (Cha et al. 2000; Blitzblau et al. 2012; Hong et al. 2019). Perhaps to accommodate these delays and to prevent DSBs from blocking progression of the replication fork, several mechanisms restrict recombination initiation to replicated DNA (Borde et al. 2000; Hochwagen et al. 2005; Blitzblau and Hochwagen 2013; Murakami and Keeney 2014).

Architecture and assembly of axial elements

Coincident with their replication, meiotic chromosomes initiate a program of chromatin loop formation and compaction, which changes their microscopic appearance from an amorphous chromatin “cloud” to distinct chromosomal bodies (Zickler and Kleckner 1998, 1999). The distinctive appearance of chromosomes helps to define five substages of the ensuing meiotic prophase and is also associated with key molecular events at the DNA level (Fig. 1) (Padmore et al. 1991; Zickler and Kleckner 1998, 1999). During the leptotene stage, as DNA replication is completed and programmed recombination is initiated, the chromatin of DAPI-stained, surface-spread nuclei appears diffuse like frayed cotton. During zygotene, individual chromosomes thicken and become more thread-like as they develop a meiosis-specific, protein-rich “core” called the axial element. At this stage, chromosome axes begin to align in pairs as DNA breaks identify homologous regions for processing into recombination products. At pachytene, homologous chromosomes are maximally thickened around a lengthwise-aligned pair of compacted axes, exhibiting a level of individualization that far exceeds that of yeast mitotic metaphase chromosomes. Aligned pachytene homologs feature an abundance of joint molecule (JM) inter-homolog recombination intermediates. Toward the end of pachytene or in diplotene, recombination intermediates are resolved, and chromosomes progressively lose their individualization, again appearing diffuse (J. S. Ahuja and G.V.B., unpublished) (Padmore et al. 1991; Klein et al. 1999; Zickler and Kleckner 1999).

In ultrastructural images, zygotene and pachytene chromosomes appear as linear arrays of chromatin loops, each array anchored to a protein-rich axis (Fig. 2, a and c) (Moens and Pearlman 1988; Zickler and Kleckner 1999). Chromatin loops have an estimated average size of 20 kb and their formation depends on the meiosis-specific cohesin complex in which Rec8 replaces the canonical kleisin Scc1 (a.k.a. Mcd1) (Klein et al. 1999; Muller et al. 2018; Schalbetter et al. 2019). Consistent with a foundational role for Rec8-cohesin in axial element formation, Rec8 binding sites coincide with chromatin loop boundaries identified in Hi-C experiments, suggesting that cohesin localizes at the base of chromatin loops (Muller et al. 2018; Schalbetter et al. 2019). Rec8-cohesin is preferentially enriched between convergent gene pairs, resulting in a quasi-regular binding pattern along the length of meiotic chromosomes (Glynn et al. 2004; Sun et al. 2015). Although looping patterns appear reproducible at a population level, modeling and experimental data indicate that Rec8-cohesin occupancy is variable between cells and even from chromatid to chromatid within a pair of homologs, possibly contributing to cell-specific usage of recombination sites (Schalbetter et al. 2019).

Fig. 2. Meiotic chromosome axis and SC development. a) Illustration of meiotic chromosome axis development. SMC ring complexes (condensin, grey; meiotic cohesin, green) promote the formation of ∼20 kb chromatin loops, through embrace of discrete, non-contiguous regions of a single DNA molecule, and/or loop extrusion activity. Sister chromatid loops anchor to a shared, protein-rich axis. Red1 and Hop1 proteins (orange, yellow) localize along the length of chromosome axes during leptotene and promote the formation of Spo11-mediated DNA double strand breaks, initiating homologous recombination and pairing between homologous chromosomes. b) Schematic of synaptonemal complex (SC) in budding yeast, which generates a ∼100 nm bridge between axes along the length of partner chromosomes. SC assembly involves the multimerization of several proteins, including the transverse filament protein Zip1 and central element proteins Ecm11 and Gmc2. Zip1 forms parallel dimers through an extended central coiled-coil region; two Zip1 dimers span the width of the SC with their C termini alongside chromosome axes and their N termini toward the SC midline. The Ecm11–Gmc2 complexes assemble at the midline of the SC. A subset of interhomolog recombination intermediates is processed by ZMM proteins (pink circle) into stable joint molecules (e.g. double Holliday junctions). SC assembly depends upon recombination initiation and ZMM proteins, and initiates from such nascent crossover-fated recombination sites. c) Surface-spread, immunostained chromosomes from S. cerevisiae mid-meiotic prophase nuclei, imaged using structured illumination microscopy. Left and middle panel: SC proteins (Zip1-N termini, green; Ecm11, magenta) are observed at the interface of aligned homologous chromosome axes (DAPI-stained DNA, white). Right panel: The ZMM protein Msh4 (green, far right panel) marks interhomolog crossover-designated recombination intermediates associated with the central element (Ecm11, magenta) of the SC. Bar, 1 μm.

Analogous to the mechanism of cohesion in mitotically dividing cells, the meiotic cohesin complex associates with chromatin prior to premeiotic replication. Upon passage of the premeiotic replication fork, cohesin becomes cohesive through acetylation of the universal cohesin component Smc3 by acetyltransferase Eco1 (Marston 2014). How Rec8-cohesin promotes the formation of arrayed chromatin loops remains unclear, but this process may involve chromatin loop extrusion. Rec8-cohesin contains ATP-dependent DNA motors of the SMC-family, which in several related complexes can promote the extrusion of DNA, resulting in the formation of loops (Terakawa et al. 2017; Ganji et al. 2018; Davidson et al. 2019). Indeed, meiotic cells depleted for Pds5, a negative regulator of cohesin ATPase activity, display strikingly shortened axial elements. As shorter axes are expected to correspond to longer loops, this phenotype supports the importance of cohesin's DNA extrusion activity in the formation of chromatin loop-arrays (Jin et al. 2009; Petela et al. 2018; Song et al. 2021). In addition, another SMC complex, condensin, localizes to axial elements and imparts a certain degree of axial compaction, as well as chromosome individualization (Yu and Koshland 2003; Zhang et al. 2014).

When Rec8's vegetative paralog Scc1 is ectopically expressed during meiosis as the sole kleisin subunit, it fails to support proper recombination and SC assembly even though it localizes to the same chromosomal sites as Rec8 and promotes sister chromatid cohesion (Toth et al. 2000; Lee and Amon 2003; Brar et al. 2009; Sun et al. 2015). This indicates that Rec8 serves unique roles during meiosis beyond sister cohesion and loop extrusion. Such roles likely include the recruitment of the meiosis-specific axis proteins: Red1 and Hop1 are major regulators of meiotic recombination that localize to axial element structures in a manner that is largely dependent on Rec8-cohesin and possibly condensin (Hollingsworth et al. 1990; Smith and Roeder 1997; Klein et al. 1999; Yu and Koshland 2003; Panizza et al. 2011). Red1 and Hop1 do not share the foundational structural role of Rec8-cohesin in axis assembly because Rec8-cohesin localizes normally along chromosomes in the absence of Red1 (Sun et al. 2015). Moreover, proteinaceous chromosomal core structures detected by electron microscopy are morphologically intact in both red1 and hop1 mutants, suggesting the formation of at least a nascent axial element structure (Rockmill and Roeder 1990; Klein et al. 1999). At the same time, hop1 mutants display genome-wide shifts in loop structure (Schalbetter et al. 2019) and loss of either Red1 or Hop1 results in abnormally diffuse mid-meiotic prophase chromosome morphology, indicating a role for these proteins in chromosome compaction (Nag et al. 1995; Yu and Koshland 2003). Red1 and Hop1 may affect higher-order chromatin folding via their critical functions in meiotic DSB formation, as a DSB-deficient spo11 mutant displays chromosome individualization defects similar to red1 and hop1 mutants (Mao-Draayer et al. 1996; Smith and Roeder 1997; Klein et al. 1999; Macqueen and Roeder 2009; Yisehak and MacQueen 2018).

Recruitment of Red1 to chromosome axes likely depends on its interaction with Rec8, as suggested by co-immunoprecipitation as well as proximity labeling experiments (Sun et al. 2015). Hop1, in turn, binds to Red1 (De Los Santos and Hollingsworth 1999; Woltering et al. 2000; West et al. 2018) and depends on Red1 for its association with Rec8-associated axial elements (Smith and Roeder 1997; Sun et al. 2015). In addition, Red1 and Hop1 also bind independently of Rec8 in regions with elevated nucleosome density and dependent on Hop1's PHD-like domain (Heldrich et al. 2022). Finally, Hop1 and Red1 also exhibit in vitro DNA binding activity with a preference for non-duplex, branched DNA, raising the possibility that the axis-association of Hop1 and Red1 involves direct engagement with DNA (Kironmai et al. 1998; Kshirsagar et al. 2017). Both Red1 and Hop1 can form higher-order assemblies: Red1 forms homo-tetrameric bundles that can further oligomerize (Woltering et al. 2000; West et al. 2019), while the HORMA (Hop1-Rev7-Mad2) domain of Hop1 binds to so-called “closure” protein-protein interaction motifs in Red1's C terminus (West et al. 2018). Hop1 also binds a closure motif in its own C-terminus (West et al. 2018), potentially allowing for the formation of higher-order Hop1 assemblies, as demonstrated for several Hop1 orthologs in C. elegans (Kim et al. 2014).

Somewhat surprisingly, axial element assembly occurs independent of DNA replication even though the two processes normally happen contemporaneously. Double mutants missing the cyclins Clb5 and Clb6 fail to initiate pre-meiotic DNA synthesis but show normal enrichment patterns for Rec8, Red1, and Hop1 (Smith et al. 2001; Blitzblau et al. 2012). Furthermore, Red1 and Hop1 assemblies formed in the absence of replication support proper axial element function, as chromosomes in replication-deficient cdc6-mn (meiotic null) mutants undergo homolog pairing, at least some SC assembly, and (interhomolog) recombination (Hochwagen et al. 2005; Brar et al. 2009; Blitzblau et al. 2012). Thus, meiotic cohesin mediates axis assembly even when it does not provide cohesion between sister chromatids.

Meiotic recombination

DSB formation

DSB formation and processing are an integral part of the meiotic program. Recombination is initiated by the formation of ∼170 DSBs in every meiotic nucleus, distributed along most of the yeast genome (Nicolas et al. 1989; Padmore et al. 1991; Pan et al. 2011). Genome-wide analyses have identified ∼3,600 meiotic DSB hotspots, a subset of which is used in different cells within a population (Gerton et al. 2000; Blitzblau et al. 2007; Buhler et al. 2007; Pan et al. 2011). DSBs form in a largely sequence non-specific manner and occur primarily in nucleosome-free promoter regions, within segments of 200–1,000 bp. At the most active hotspots, DSB formation is sufficiently common to be detectable by Southern blot analysis, with the engineered HIS4::LEU2 hotspot breaking in essentially every cell (Cao et al. 1990; Zhang et al. 2011).

DSB formation depends on three physically interconnected yet functionally distinct protein subcomplexes that together control the catalytic activity of the DSB-forming enzyme Spo11 (Fig. 3). Spo11 is a meiosis-specific transesterase that shares sequence similarity with the catalytic component of archaebacterial topoisomerase VI (Bergerat et al. 1997). Like other type II topoisomerases, two Spo11 molecules undergo nucleophilic attack of phosphates in both DNA strands via a highly conserved tyrosine, generating 2-nucleotide staggered 5′ overhangs at the cleaved site (De Massy et al. 1995; Liu et al. 1995; Xu and Kleckner 1995; Keeney et al. 1997; Claeys Bouuaert et al. 2021). Unlike topoisomerase VI, however, Spo11 does not re-ligate the cleaved strands, but remains covalently attached to the DNA ends, producing a protein-capped DSB (Keeney et al. 1997).

Fig. 3. Tethered loop-axis model of meiotic DSB formation. a) DSBs occur in chromatin loops devoid of axis proteins Red1, Hop1 and cohesin kleisin subunit Rec8, in nucleosome-free regions upstream of transcription start sites or between diverging transcription units (arrows). Sectored circles indicate nucleosomes, with histone H3 of the first histone of each transcription unit carrying a trimethylation at lysine K4. H3K4 trimethylation and H3K4 recognition are carried out by COMPASS complex components Set1 and Spp1, respectively. b) Loop DNA is recruited to the emerging chromosome axis via interaction between histone reader Spp1 with both H3K4me3 and the axis-associated RMM complex. c) The RMM complex recruits the catalytic core comprising Spo11–Rec102–Rec104 together with Ski8 (not shown) to initiate DSB formation in loop sequences, but in association with chromosome axes. The DSB formation and resection MRX complex also localizes to DSB sites but is omitted for clarity.

Archeal topoisomerase VI is a heterotetramer comprising two A and two B subunits (Forterre et al. 2007). The A subunit is characterized by the “Toprim” domain also found in Spo11 (and other topoisomerases and primases), whereas Spo11 interaction partners Rec102 and Rec104 jointly exhibit a remote similarity with the B subunit of the type-II topoisomerase gate complex (Salem et al. 1999; Robert et al. 2016; Vrielynck et al. 2016; Claeys Bouuaert et al. 2021). Ski8 as the fourth protein in the catalytic DSB core complex lacks sequence similarity with topoisomerase VI but interacts with Spo11 directly as a presumed scaffolding component (Arora et al. 2004; Claeys Bouuaert et al. 2021). Whereas Spo11, Rec102, and Rec104 are meiosis-specific proteins, Ski8 also performs functions unrelated to recombination during vegetative growth in the cytoplasm but translocates to the nucleus during meiosis (Arora et al. 2004).

Spo11 activity requires two additional subcomplexes that couple DSB formation to the axial element and to DSB processing, respectively, thereby ensuring that Spo11-DSBs only form when they can readily be repaired. The meiosis-specific Rec114–Mer2–Mei4 (RMM) complex consists of Rec114, Mer2 (a.k.a. Rec107), and Mei4 (Fig. 3b). Mer2, which is capable of forming a phase-separated condensate, interacts with Rec102/Rec104, assembles DNA-mediated nucleoprotein ensembles, and recruits Spo11 complexes (Menees and Roeder 1989; Malone et al. 1991; Rockmill, Engebrecht, et al. 1995; Li et al. 2006; Maleki et al. 2007; Claeys Bouuaert et al. 2021). Mer2 further couples DSB formation to replication, undergoing consecutive phosphorylation by CDK and DDK (Henderson et al. 2006; Sasanuma et al. 2008; Wan et al. 2008). Mer2 phosphorylation by replisome-associated kinase DDK ensures that DSBs form only after passage of the replication fork, although this coupling appears to be bypassed in cdc6-mn mutants (Blitzblau and Hochwagen 2013; Murakami and Keeney 2014).

A third protein subcomplex required for meiotic DSB formation, MRX, is shared with vegetative DNA damage response (DDR) pathways. MRX comprises the endo/exonuclease Mre11, Rad50, an SMC protein and ATPase that assembles into a large ring structure capable of embracing and/or bridging DNA molecules, as well as Xrs2, a protein required for the nuclear translocation of Mre11 and Rad50 (Oh et al. 2016). Whereas the role of MRX in vegetative cells is limited to DSB resection, during meiosis it is also indispensable for DSB formation. Like Spo11, chromosomal distribution of MRX is strongly correlated with DSB positions and frequencies (Borde et al. 2004; Pan et al. 2011). Functions of MRX in DSB formation and resection are separable, as mre11S and rad50S alleles are functional for DSB formation yet defective for resection (below) (Alani et al. 1990; Nairz and Klein 1997).

Unlike other Spo11-interacting proteins, the RMM complex is not enriched at DSB hotspots, but instead localizes to axial-element sites likely via interaction with Hop1 (Panizza et al. 2011). The positional anticorrelation between DSB sites and axis protein Red1 as well as the RMM complex led to the “tethered-loop-axis complex” model, where Spo11 cuts DSB sites located in non-axis associated loop DNA, thereby bringing the recombination site to the chromosome axis for subsequent processing steps (Fig. 3) (Blat et al. 2002; Panizza et al. 2011; Acquaviva et al. 2013; Sommermeyer et al. 2013). Notably, however, DSBs are less abundant but not abolished in mutants missing axial element proteins Rec8 or Red1, indicating that RMM complexes can activate DSB formation without an axial element (Mao-Draayer et al. 1996; Schwacha and Kleckner 1997; Blat and Kleckner 1999; Klein et al. 1999; Carballo et al. 2008; Kugou et al. 2009; Sun et al. 2015).

The exact position of DSBs within chromatin loops is controlled epigenetically, via interaction of the DSB machinery with trimethylated histone H3 lysine 4 (H3K4me3). This histone modification occurs predominantly at the first nucleosome within ORFs, both in meiotic and vegetative cells, accounting for frequent association of DSB hotspots with (divergent) promoters (Sollier et al. 2004; Blitzblau et al. 2007). Interaction between meiotic axes and loop-located H3K4me3 occurs via the RMM component Mer2, which interacts with the histone modifying COMPASS complex to form a physical bridge between DSB site and axial element (Pan et al. 2011; Acquaviva et al. 2013; Sommermeyer et al. 2013). The COMPASS complex carries out trimethylation of histone H3K4 via its catalytic component Set1 (Fig. 3a). Links between DSB sites and the RMM complex are directly stabilized by another COMPASS complex component, the histone reader Spp1, which can simultaneously interact with H3K4me3 via its PHD finger motif and with Mer2 (Acquaviva et al. 2013; Sommermeyer et al. 2013; Rousova et al. 2021). Importantly, targeting Spp1 to a region that lacks H3K4me3 suffices to induce Spo11-mediated DSB formation (Sommermeyer et al. 2013). H3K4 trimethylation further depends on mono-ubiquitylation of histone H2B by the E2/E3 ubiquitin ligase pair Rad6/Bre1 and on the PAF1C complex, explaining effects of these proteins on DSB formation (Sollier et al. 2004; Yamashita et al. 2004; Gothwal et al. 2016). At the same time, not all H3K4me3 sites are correlated with DSBs and vice versa, suggesting the involvement of other determinants (Borde et al. 2009; Bani Ismail et al. 2014).

Finally, the 26S proteasome is recruited to chromosomes in a meiosis-specific manner at the time of DSB formation and is required for efficient DSB formation, raising the possibility that DSB formation involves protein degradation in close proximity to the chromosome axis (Ahuja et al. 2017; Yang et al. 2022).

DSB resection

DSB formation is rapidly followed by 5′ resection, during which both Spo11-capped DNA strands are nicked endonucleolytically up to 300 nucleotides from the DSB site via the single-stranded nicking activities of the MRX complex in association with Mre11 activator Sae2 (a.k.a. Com1) (Fig. 4) (Neale et al. 2005; Garcia et al. 2011; Cannavo and Cejka 2014; Anand et al. 2016; Arora et al. 2017). Accordingly, unresected DSBs physically linked to Spo11 accumulate in sae2D [delta] as well as mre11S and rad50S meiotic cells. (Alani et al. 1990; Keeney et al. 1997; McKee and Kleckner 1997a; Nairz and Klein 1997; Prinz et al. 1997). Resection initiation depends on Sae2 phosphorylation by checkpoint kinases Tel1ATM and Mec1ATR, with the former playing a more critical role in resection during early meiosis when DSB abundance is low (Cartagena-Lirola et al. 2006; Joshi et al. 2015; Mimitou et al. 2017). Using the nick as an entry point for exonucleolytic resection, the MRX complex resects towards the DSB site in the 3′ to 5′ direction, releasing two Spo11-linked oligonucleotide species 23-37 and <12 nucleotides in length (Neale et al. 2005; Garcia et al. 2011). Exonuclease Exo1 resects away from the DSB site, extending the single stranded resection tract to ∼800 nucleotides (Tsubouchi and Ogawa 2000; Zakharyevich et al. 2010; Mimitou et al. 2017). The resulting 3′ single-stranded overhangs form the substrate for all subsequent homology search and strand exchange reactions.

Fig. 4. Homologous recombination pathways during meiosis. The recombination model shows two allelic double stranded DNA molecules from homologous chromosomes in blue and red. Spo11, covalently attached to the 5′ ends of the cleaved strand, is indicated by a filled circle. 3′ ends and newly synthesized DNA are indicated by arrowheads and short arrows in blue or red, respectively, without consideration of ligation status. Recombination between sister chromatids likely involves equivalent intermediates as recombination between homologs, and only the names of the relevant molecules are provided (intersister single end invasion, IS-SEI; intersister double Holliday junction, IS-dHJ). Single end invasion (SEI) and double Holliday junction (dHJ), molecules are thought to exist in two conformations, as indicated by the dotted vertical line in black. Movements of Holliday junctions are indicated by open arrows. To generate crossovers from dHJs, the two tandem Holliday junctions need to be resolved with opposite directionalities, either by two single stranded nicks that flank each junction or via nicks of both crossing strands (see text for details).

DSB strand exchange and recombination pathway choice

To initiate homology-directed DSB repair, the single-stranded 3′ DNA overhang invades an intact double-stranded DNA template, either on the homologous chromosome (red; Fig. 4) or on the sister chromatid (blue), displacing an intact DNA strand with the same directionality and undergoing base pairing with the complementary strand giving rise to a D-loop intermediate. All interhomolog recombination events likely are initiated by nascent D-loops involving side-by-side (paranemic) interactions between single-stranded DNA segments, which are subsequently converted into a topologically interwound (plectonemic) interaction (Hunter and Kleckner 2001). A subset of these early intermediates eventually progresses into stable interhomolog single-end invasions (SEIs), the earliest detectable JM recombination intermediates associated with the crossover outcome (Allers and Lichten 2001a; Hunter and Kleckner 2001). By contrast, D-loop intermediates that give rise to non-crossovers have eluded detection by 2D gel Southern blot analysis likely because they are unstable (Börner et al. 2004). Single end invasions are converted into interhomolog double-Holliday junctions following DNA synthesis at both invading 3′ ends, capture of the second DSB end, and re-ligation of DSBs (Schwacha and Kleckner 1995; Lao et al. 2008). Double-Holliday junctions entail fully-ligated DNA strands that are separated by ∼260 bp of heteroduplex DNA between the two junctions, corresponding to ∼90 nm of B-form duplex DNA (Bell and Byers 1983; Schwacha and Kleckner 1995; Cromie et al. 2006; Oh et al. 2008). Prior to DSB second end capture, the Holliday junction frequently branch migrates away from the DSB site, generating a double-Holliday junction positioned entirely on one side of the DSB (Allers and Lichten 2001b; Lao et al. 2008; Ahuja et al. 2021) (Fig. 4). Consistent with this model, heteroduplex DNA in crossover products is often detected only on one side of the DSB (Allers and Lichten 2001b; Ahuja et al. 2021).

Whereas DSB repair in mitotically dividing cells uses the sister chromatid as template (Kadyk and Hartwell 1992; Symington et al. 2014), during meiosis a non-sister chromatid belonging to the homolog is the preferred recombination partner, as the goal is to create crossover linkages that support homolog segregation (Schwacha and Kleckner 1997). Recombination intermediates between sister chromatids are formed at lower frequencies and are actively suppressed during meiosis (Schwacha and Kleckner 1997; Kim et al. 2010; Lao et al. 2013; Callender et al. 2016), although prior to stabilization of inter-homolog SEIs, invading 3′ ssDNA ends frequently change recombination templates between homolog and sister chromatid (McMahill et al. 2007; Marsolier-Kergoat et al. 2018; Sandhu et al. 2020; Ahuja et al. 2021). It is also noteworthy that intersister repair is suppressed only transiently during meiosis, as indicated by frequent repair with the sister chromatid during early meiosis (Joshi et al. 2015), in absence of a matching DNA sequence on the homolog (Goldfarb and Lichten 2010) and during arrest in mid-to-late prophase I (Subramanian et al. 2016).

Like the crossover pathway between homologs, DSB repair between sister chromatids involves intersister SEIs and presumed intersister double-Holliday junctions (Schwacha and Kleckner 1997; Kim et al. 2010), although it has not been ruled out that single Holliday junctions are also formed (Fig. 4). Notably, single-Holliday junctions are the predominant recombination intermediate detectable in Schizosaccharomyces pombe (Cromie et al. 2006). They are also detectable by electron microscopy in S. cerevisiae and may contribute to intersister recombination but alternatively may represent JM resolution intermediates (Oh et al. 2008).

Roles of Dmc1 and Rad51 in DSB strand exchange

Strand exchange of the first DSB end with an intact template DNA is mediated by Dmc1 and Rad51, two orthologs of prokaryotic RecA recombinase (Bishop et al. 1992; Shinohara et al. 1992). Whereas Rad51 is also involved in homologous recombination in vegetative cells, Dmc1 is specifically expressed during meiotic prophase. Following 5′ resection, Rad51 and Dmc1 form a nucleoprotein filament at 3′ ssDNA overhangs, replacing the single-strand binding protein RPA (Gasior et al. 1998; Shinohara et al. 1998; Plate et al. 2008). RPA replacement is promoted by a homoheptameric ring of Rad52, although functional Dmc1 filaments can also assemble without Rad52 (Gasior et al. 1998, 2001; Lao et al. 2008). The two recombinases form separate domains in the nucleoprotein filament; Dmc1 binds to the very 3′ end of the DSB, while Rad51 localizes to the region of the single-stranded tail closest to duplex DNA (Shinohara et al. 2000; Brown et al. 2015; Crickard et al. 2018; Lan et al. 2020). Rad51 self-assembles via homotypic interactions, but also recruits Dmc1 into the filament (Shinohara et al. 2000; Brown et al. 2015; Crickard et al. 2018; Lan et al. 2020). Although both Rad51 and Dmc1 are present at meiotic DSBs, the bulk of strand exchange catalysis is carried out by Dmc1 (Bishop et al. 1992, Bishop 1994; Cloud et al. 2012). As a result, recombination occurs normally when Rad51's strand exchange activity is disrupted, whereas mutants lacking Dmc1 accumulate resected DSBs, though in some strain backgrounds, DSBs are eventually repaired with frequent use of the homolog as template (Rockmill and Roeder 1994; Cloud et al. 2012).

Why does meiosis in yeast and many other eukaryotes depend on two strand-exchange proteins with apparently overlapping features? For one, Dmc1 appears better suited for strand exchange in the presence of mismatches, which is a fundamental aspect of interhomolog recombination (Callender et al. 2016; Steinfeld et al. 2019). The combined presence of Rad51 and Dmc1 further ensures that the homolog rather than the sister chromatid is used as recombination partner, as indicated by frequent repair with the sister chromatid in absence of either RecA paralog (Schwacha and Kleckner 1997; Lao et al. 2013; Callender et al. 2016).

Proper function of Dmc1 and Rad51 during meiosis depends on many auxiliary factors. Mutants lacking these factors resemble dmc1 or rad51 deletion mutants, accumulating hyper-resected DSBs or undergoing strand exchange with the sister chromatid instead of the homolog, respectively (McKee and Kleckner 1997b; Schwacha and Kleckner 1997; Leu et al. 1998; Hong et al. 2013). Assembly of the Dmc1 nucleoprotein filament depends on the heterodimeric Mei5–Sae3 complex, (Ferrari et al. 2009; Chan et al. 2019), whereas heterodimeric Hop2–Mnd1 mediates strand exchange by providing a bridge between the Dmc1-nucleoprotein filament on the invading strand and the template duplex DNA (Tsubouchi and Roeder 2003; Kang et al. 2015; Crickard et al. 2019).

Rad51 accessory proteins perform functions analogous to those in vegetative cells [reviewed in (Symington et al. 2014)]. The low abundance Rad51-paralogs Rad55 and Rad57 recruit or stabilize Rad51 during initiation of nucleofilament assembly, in part by countering the Rad51-removing activity of DNA helicase Srs2 (Schwacha and Kleckner 1997; Gasior et al. 1998; Liu et al. 2011). The hetero-tetrameric Shu complex, which is composed of two additional Rad51 paralogs (Psy3 and Csm2) as well as Shu1 and Shu2, is also involved in loading and/or stabilizing the Rad51 filament (Hong et al. 2013; Sasanuma et al. 2013).

Functionality of Dmc1 and Rad51 is further modulated by two paralogous DNA translocases that play roles not only in nucleoprotein filament assembly, but also in Rad51/Dmc1 removal following strand exchange. Rad54 and Tid1 (a.k.a. Rdh54) interact with Rad51 and Dmc1, respectively, and appear to perform partially overlapping functions in the formation and/or stabilization of D-loops (Dresser et al. 1997; Shinohara et al. 1997; Nimonkar et al. 2012). Notably, whereas Dmc1 is meiosis-specific, Tid1 is not, suggesting that it plays additional roles in DSB repair not connected to Dmc1 (Shah et al. 2020). Subsequent to D-loop formation, Rad54 and/or Tid1 also displace the RecA recombinases from ssDNA at recombination sites, possibly to provide a naked ssDNA strand capable of capturing the second DSB end, and allowing access for a DNA polymerase to perform repair synthesis (Fig. 4) (Li and Heyer 2009; Wright and Heyer 2014).

In addition to their functions in displacing RecA recombinases at DSB sites, Rad54 and Tid1 also remove the respective recombinases from intact double stranded DNA that lack DSBs, thereby preventing the formation of potentially toxic recombination intermediates (Holzen et al. 2006; Shah et al. 2010; Reitz et al. 2021). Thus, while Rad51 and Dmc1 normally colocalize at DSB sites, each recombinase also associates with additional sites along the genome that have not undergone DSB formation when Rad54 and/or Tid1 are absent (Shinohara et al. 2000).

Suppression of recombination with the sister chromatid

Although Rad51's strand exchange activity is largely dispensable for recombination during wild-type meiosis, the protein is critical for directing Dmc1-mediated strand exchange to the homologous chromosome. When Rad51 is absent, not properly incorporated into nucleoprotein filaments or aberrantly degraded, strand exchange mediated by Dmc1 alone occurs preferentially with the sister chromatid (Schwacha and Kleckner 1997; Cloud et al. 2012; Hong et al. 2013; Woo et al. 2020). Rad51 must also be prevented from carrying out Dmc1-independent strand exchange which generates mostly inviable gametes due to increased intersister repair and/or insufficient interhomolog crossover formation (Rockmill and Roeder 1994; Lao et al. 2013; Callender et al. 2016). Rad51 inhibition is achieved via at least two mechanisms, both of which destabilize Rad51's interaction with its activator Rad54: First, Rad54 is outcompeted for binding to Rad51 by the small, meiosis-specific protein Hed1 (Tsubouchi and Roeder 2006; Busygina et al. 2008). Second, the Hop1-associated kinase Mek1 phosphorylates Rad54 to destabilize its interaction with Rad51, but not with Dmc1 (Niu et al. 2009; Ziesel et al. 2022). In addition, Hed1 is stabilized via phosphorylation by Mek1, again minimizing intersister recombination (Callender et al. 2016).

Mek1 appears to attenuate all DSB strand exchange but suppresses intersister exchange more effectively than interhomolog exchange perhaps because its inhibitory signaling remains associated with the chromosome axis that sustained the DSB (Niu et al. 2009; Subramanian et al. 2016). Activation of Mek1 kinase depends on the DSB-triggered phosphorylation of axis protein Hop1 by the ATM/ATR-related kinases Tel1/Mec1, which is thought to mediate Mek1 homodimerization and/or chromosomal recruitment (Schwacha and Kleckner 1997; Smith and Roeder 1997; Bailis and Roeder 1998; Niu et al. 2005; Carballo et al. 2008; Kim et al. 2010). Both Hop1 phosphorylation and its distribution along chromosome axes further mediate homolog bias, as suggested by the role in homolog bias of Hop1-chaperone Pch2 which carries out this function redundantly with Mec1ATR (Joshi et al. 2015).

Intersister recombination is prevented at three additional stages: First, intersister exchange of early, low abundance DSBs is minimized by DNA helicase Mph1FANCM, which channels DSBs towards interhomolog repair by dissolving pre-pairing intersister D-loops (Sandhu et al. 2020). Second, cohesin Rec8 mediates homolog bias during SEI formation thereby promoting progression to interhomolog rather than intersister double Holliday junctions (Kim et al. 2010; Hong et al. 2013). Third, at the step of DSB second end capture, DNA helicase Sgs1BLM prevents SEIs from re-invading a previously uninvolved chromatid (either the sister or the second homolog chromatid) (Oh et al. 2007).

Processing of crossover-designated recombination intermediates

The predominant meiotic crossover pathway involves stable SEIs, DSB second end capture followed by repair synthesis of DNA previously removed during 5′ resection, dHJ formation and crossover-specific dHJ resolution (above; Fig. 4). Several steps along this pathway are carried out by meiotic paralogs of the mismatch repair machinery adapted to the meiotic process (Kunkel and Erie 2005). Following strand exchange, a heterodimer composed of the meiosis-specific MutS orthologs Msh4/5 (called MutSγ to distinguish it from the MutSα and MutSβ dimers involved in mismatch repair) stabilizes SEI intermediates and likely dHJs (Ross-Macdonald and Roeder 1994; Hollingsworth et al. 1995; Novak et al. 2001; Börner et al. 2004; Snowden et al. 2004; Jessop et al. 2006; Oh et al. 2007). MutSγ acts in collaboration with several meiosis-specific proteins collectively known as the “ZMM” group of proteins, which link recombination to assembly of the SC (Börner et al. 2004).

All ZMM proteins are cytologically associated with designated crossover sites where they mediate formation and/or stabilization of crossover-specific SEIs (Fig. 2, b and c) (Börner et al. 2004; Fung et al. 2004; Snowden et al. 2004). Besides MutSγ, the ZMMs include the Zip3 E3 SUMO ligase (Agarwal and Roeder 2000; Cheng et al. 2006; Serrentino et al. 2013), a sub-complex consisting of Zip2, Zip4, and Spo16 (ZZS) (Perry et al. 2005; Shinohara et al. 2008; De Muyt et al. 2018) as well as the Mer3 DNA helicase (Nakagawa and Ogawa 1999). Within the ZZS subcomplex, Zip2 and Spo16 are structurally related to the nucleotide excision repair endonuclease XPF-ERCC1 and, like MutSγ, bind branched DNA structures (Snowden et al. 2004; De Muyt et al. 2018). The presumed scaffolding factor Zip4 appears to provide a bridge between several ZMMs, such as Zip3, and axis protein Red1, as well as SC central element protein Ecm11 (De Muyt et al. 2018; Pyatnitskaya et al. 2022). Finally, the dually functioning transverse filament protein Zip1 mediates ZMM activity independent of its role as a structural component of the SC [for details see “The functional relationship between SC and recombination”].

While crossover-specific interhomolog SEIs are stabilized by ZMM proteins, these intermediates are dismantled by the DNA helicase Sgs1, which operates as a complex with Top3 and Rmi1 (STR complex) (Jessop et al. 2006; Jessop and Lichten 2008; De Muyt et al. 2012; Kaur et al. 2015; Tang et al. 2015). Competition between the ZMM and the STR complexes determines whether an interhomolog recombination intermediate is processed into a crossover or a non-crossover (Kaur et al. 2015; Tang et al. 2015).

ZMM-stabilized SEIs eventually are processed into interhomolog dHJs via the single-strand annealing activity of Rad52 which mediates capture of the second DSB end (Lao et al. 2008). For resolution of dHJs, MutSγ is joined at recombination sites by a MutL-related heterodimer Mlh1/3 [referred to as MutLγ, to distinguish it from the α and β mismatch repair dimers], which also binds dHJs and exhibits resolvase activity that exclusively gives rise to crossovers (Zakharyevich et al. 2012; Ranjha et al. 2014; Cannavo et al. 2020; Kulkarni et al. 2020; Sanchez et al. 2020). MutLγ is thought to resolve dHJs in a crossover-specific manner by nicking the DNA strands containing newly synthesized DNA in regions flanking the Holliday junctions (Fig. 4) (Kulkarni et al. 2020). Alternatively, a canonical Holliday junction resolution mechanism has been proposed that involves nicking of single-stranded regions at the two junction points (West et al. 2015; Cannavo et al. 2020).

Apart from MutSγ and MutLγ, dHJ resolution depends on several additional repurposed mismatch repair factors (Kunkel and Erie 2005). These include the sliding clamp PCNA (Pol30), which normally stabilizes DNA association of DNA polymerase, the heteropentameric PCNA-loader replication factor C (Rfc1-5), as well as exonuclease Exo1 (Kulkarni et al. 2020). The catalytic exonuclease activity of Exo1 is dispensable for stimulating MutLγ-mediated Holliday junction resolution (Zakharyevich et al. 2010, 2012; Kulkarni et al. 2020). Instead, Exo1 recruits the polo-like kinase Cdc5 to recombination sites, which activates dHJ resolution (Clyne et al. 2003; Sourirajan and Lichten 2008; Zakharyevich et al. 2012; Cannavo et al. 2020; Sanchez et al. 2020). The ZMM group of proteins may enforce a crossover outcome by mediating orientation-specific loading of PCNA during dHJ formation, thus directing the MutSγ/MutLγ/ExoI ensemble to nick specific DNA strands (Cannavo et al. 2020; Kulkarni et al. 2020).

Non-crossover formation via synthesis-dependent strand annealing (SDSA)

The original model of DSB repair predicted that non-crossovers arise via nicking of the four crossing strands within the double Holliday junction (Szostak et al. 1983), yet several observations argue against this possibility for the bulk of meiotic non-crossovers. First, a majority of non-crossovers appear concurrently with, rather than after, dHJ formation, contradicting a precursor-product relationship (Allers and Lichten 2001a). Second, mutants with defects in the formation of SEIs and dHJs form non-crossovers normally, while crossovers are reduced or absent (Allers and Lichten 2001a; Börner et al. 2004). Third, crossovers and non-crossovers exhibit gene conversion tracts of different lengths, averaging 2 and 1.8 kb, respectively (Chen et al. 2008; Mancera et al. 2008; Ahuja et al. 2021), again suggesting that they are not derived from the same intermediate.

Non-crossovers are thought to arise by a process referred to as synthesis-dependent strand annealing (SDSA) involving interhomolog strand-exchange intermediates that are not stabilized by the ZMM complex (McMahill et al. 2007; De Muyt et al. 2012). During SDSA, these unstable D-loop intermediates undergo only limited repair synthesis with the homolog followed by displacement of the invading 3′ overhang (Fig. 4). Strand displacement is carried out by the combined action of the BLM-related DNA helicase Sgs1 in collaboration with decatenation complex Top3/Rmi1 (Jessop et al. 2006; Oh et al. 2007; Jessop and Lichten 2008; De Muyt et al. 2012; Zakharyevich et al. 2012; Kaur et al. 2015; Tang et al. 2015). Following its displacement, the 3′ extended single-stranded tail can anneal with the opposing DSB end giving rise to a non-crossover (Allers and Lichten 2001a; McMahill et al. 2007; Marsolier-Kergoat et al. 2018). Because only one of the two DSB ends engages in interhomolog strand exchange and repair synthesis, non-crossovers typically exhibit gene conversions towards one side of the DSB site (McMahill et al. 2007; Marsolier-Kergoat et al. 2018; Ahuja et al. 2021). Finally, a substantial fraction of non-crossovers (at least 25%) are generated via gap repair that fills in up to 200 bp between a pair of adjoining DSBs on the same DNA molecule (Johnson et al. 2021; Prieler et al. 2021).

Processing of class II recombination events into crossovers and non-crossovers

A small fraction of interhomolog dHJs may form independently of ZMM proteins in wild-type cells, and resolve via an alternative, so-called class II pathway; this pathway dominates in absence of Sgs1 or ZMM group proteins (above; Fig. 5) (De Muyt et al. 2012). The class I and class II recombination pathways are thought to deviate during or after the DSB first end strand exchange (Börner et al. 2004; De Muyt et al. 2012). D-loop intermediates not stabilized as SEIs by ZMM proteins are normally subject to dissociation by Sgs1. When dissociation fails, ZMM-independent SEIs progress to dHJs that are subsequently resolved by structure selective endonucleases (SSE; Mms4/Mus81, Slx1/4 as well as Yen1) and independently of the MutLγ complex (de los Santos et al. 2003; Börner et al. 2004; Oh et al. 2008; De Muyt et al. 2012; Zakharyevich et al. 2012). Resolution of class II crossovers further depends on Smc5/6, a repair-specific SMC complex related to cohesin and condensin (Copsey et al. 2013; Lilienthal et al. 2013; Xaver et al. 2013).

Fig. 5. Quantitative contributions of distinct pathways to meiotic recombination. Diagram shows paired homologs in blue and red. Sister chromatids, shown here as a single unit, are equally likely to partake in the indicated recombination events. Steps in the diagram are functionally distinct but may occur contemporaneously or in a different order. Approximate contributions of four recombination outcomes are considered. Interhomolog and intersister recombination occurs at a ratio of 9:1. Interhomolog recombination events are divided between crossovers and non-crossovers at a ratio of 2:1. Class I and class II pathways contribute crossovers at a ratio of 2:1. a) ∼170 DSBs (long white arrows) are locally dispersed along the length of the chromosome through action of Tel1ATM checkpoint kinase. b) A maximally spaced subset of early recombination intermediates, likely nascent strand exchange events, is designated as future interfering class I crossovers (green block arrows). Designation of class I crossover sites involves chromosome axis component Top2 while maintenance of their fate depends on the ZMM proteins. c) The interference-insensitive class II pathway contributes a subset of future crossovers (black block arrows), which involves structurally indistinguishable recombination intermediates as the class I crossover pathway. d) The remaining DSBs are processed into non-crossovers (short arrows filled with color of opposite homolog) or into intersister exchanges (short open arrows). e) Resolution of class I crossovers via MutLγ (green X) and of class II recombination events (black X) by structure-selective resolvases including Mms4-Mus81. Some class II events also give rise to non-crossovers (not shown).

Unlike ZMM-associated “class I” dHJ intermediates, which predominantly generate crossovers, dHJs formed by the class II pathway are resolved in an unbiased manner by SSEs, equally giving rise to crossovers and non-crossovers (De Los Santos et al. 2003; Börner et al. 2004; Oh et al. 2008; De Muyt et al. 2012; Zakharyevich et al. 2012). SSE normally become active only following exit from prophase I through phosphorylation by Cdc5 and CDK (Matos et al. 2011). Yen1 in particular is subject to inhibitory phosphorylation until meiosis II and, being dispensable during wild-type meiosis, is thought to serve as a resolvase of last resort (Matos et al. 2011). Whereas “class I” crossovers exhibit a patterned genome-wide distribution, as indicated by their maximum spacing (interference) and assurance that chromosomes independent of size undergo at least one crossover, crossovers formed along the alternative “class II” pathway lack both of these features (for details see “Spatial and temporal control of recombination”) (Sym and Roeder 1994; Novak et al. 2001; de los Santos et al. 2003).

Homolog pairing and reinforcement of chromosome alignment

Role of recombination in homolog pairing

Alignment of homologous chromosomes in pairs occurs in close coordination with recombination progression. Although homologs associate at some levels in vegetative nuclei, they achieve exclusive and intimate alignment only during mid-meiotic prophase I (Scherthan et al. 1994; Weiner and Kleckner 1994; Nag et al. 1995; Burgess et al. 1999; Peoples et al. 2002; Sandhu et al. 2020). Both genetic and cytological approaches indicate that stable homolog pairing strongly depends on early steps in meiotic recombination, i.e. DSB formation and strand exchange (Loidl et al. 1994; Weiner and Kleckner 1994; Peoples et al. 2002; Peoples-Holst and Burgess 2005; Lui et al. 2006). Yet, homolog recognition does not appear to be solely underpinned by strand exchange, as mutants lacking both Rad51 and Dmc1 exhibit a substantial level of homolog pairing compared to the low level observed in a spo11 mutant (Tsubouchi and Roeder 2003; Yisehak and Macqueen 2018).

Strand exchange only establishes homologous interactions at a local sequence level, suggesting that additional layers of regulation exist to minimize pairing between homologous regions on heterologous chromosomes. While recombination between such regions occurs at substantial frequencies, these interactions normally do not impede the stable alignment of homologs (Jinks-Robertson and Petes 1985; Lichten et al. 1987; Haber et al. 1991; Goldman and Lichten 1996, 2000; Jinks-Robertson et al. 1997). Interestingly, in the absence of Dmc1-accessory protein dimer Hop2–Mnd1, some pairing and SC assembly occur between heterologous chromosomes (Leu et al. 1998; Peoples et al. 2002; Tsubouchi and Roeder 2002), and this erroneous pairing is mediated by Rad51 or Dmc1 recombinases, at least in certain strain backgrounds (Tsubouchi and Roeder 2003; Zierhut et al. 2004). Hop2 and Mnd1 thus appear to facilitate recombinase discrimination between homologous and heterologous chromosomes.

Recombination-independent pairing mechanisms

Several recombination-independent processes modulate chromosome associations during prophase I. These include homology-independent centromere coupling, formation of a “bouquet” organization, and actin-mediated rapid chromosome movements. Such meiosis-specific chromosome redistribution mechanisms may improve the capacity of recombination pathways to align partner chromosomes.

Leptotene centromere coupling

Centromeric regions of leptotene chromosomes associate in pairwise fashion, independent of homology or Spo11 but dependent on Rec8-cohesin and the SC transverse filament protein Zip1 (Tsubouchi and Roeder 2005; Falk et al. 2010; Obeso and Dawson 2010). The function of this so-called centromere coupling is not understood, but centromere associations may be non-random, as chromosome conformation capture experiments suggest they are guided by chromosome size, and thus may presort chromosomes for homolog pairing (Lefrancois et al. 2016). Release from homology-independent centromere coupling depends on recombination initiation, N-terminal Zip1 phosphorylation mediated by Mec1ATR, and a fully functional proteasome (Tsubouchi and Roeder 2005; Falk et al. 2010; Obeso and Dawson 2010; Ahuja et al. 2017).

Telomere bouquet

In non-meiotic interphase cells, centromeres are clustered as a remnant of the preceding cell division in the so-called “Rabl” configuration (Scherthan et al. 1994; Zickler and Kleckner 1998). The meiotic bouquet refers to a transient reorganization within the zygotene nucleus where telomeres cluster at a limited region of the nuclear envelope near the spindle pole body (Jin et al. 1998; Trelles-Sticken et al. 1999). Bouquet formation requires a telomere-associated protein complex containing Ndj1, Csm4, and the SUN-domain protein Mps3, which form a bridge through the nuclear envelope that connects the ends of meiotic chromosomes with cytoplasmic actin cables (Conrad et al. 1997, 2007, 2008; Trelles-Sticken et al. 2000, 2005; Kosaka et al. 2008; Wanat et al. 2008).

Rapid prophase movements (RPMs)

The bouquet-promoting proteins Ndj1, Csm4, and Mps3 also facilitate rapid, actin-mediated chromosome movements starting early in meiotic prophase with average speeds of ∼0.4 μm per second in a nucleus measuring ∼3 μm in diameter (Trelles-Sticken et al. 2005; Scherthan et al. 2007; Conrad et al. 2008; Koszul et al. 2008). ndj1, csm4, and mps3 mutants exhibit delays in homolog pairing and recombination (Conrad et al. 1997; Trelles-Sticken et al. 2000; Wu and Burgess 2006; Kosaka et al. 2008; Koszul et al. 2008; Wanat et al. 2008; Rao et al. 2011; Lee et al. 2012) and, in strains expressing non-null mps3 alleles, pairing outcomes correlate with RPMs but not bouquet formation (Lee et al. 2012). RPMs may actively promote chromosomal encounters, as encounter frequencies between both homologous and non-homologous chromosomes are substantially reduced in csm4 mutants (Lee et al. 2012). Alternatively, or in addition, RPMs could serve a homology stringency test function by pulling apart non-allelic interactions (Conrad et al. 2008; Koszul et al. 2008; Koszul and Kleckner 2009). That RPMs reach maximal speed in pachytene-arrested ndt80 mutant cells is consistent with a role in dismantling non-allelic interactions (Conrad et al. 2008; Kosaka et al. 2008; Koszul et al. 2008; Wanat et al. 2008). Finally, recombination also affects chromosome movements, either directly or indirectly, as RPMs do not reach wild-type speed in the absence of recombination (Conrad et al. 2008; Kosaka et al. 2008; Koszul et al. 2008; Wanat et al. 2008).

The SC: an outcome of successful homolog pairing

Meiotic chromosome structure is modified during the zygotene-to-pachytene transition through the process of synapsis, which entails the assembly of a macromolecular protein structure called the synaptonemal complex (SC) (Fig. 2, b and c). While the SC is dispensable for homolog pairing, it promotes an intimate physical association between partner chromosome axes along their entire length (Weiner and Kleckner 1994; Rockmill, Sym, et al. 1995). The SC forms a ∼100 nm wide bridge between chromosome axes through the multimerization of SC central region proteins, which include rod-like transverse filament and central element proteins (Sym et al. 1993; Zickler and Kleckner 1999; Humphryes et al. 2013; Voelkel-Meiman et al. 2013).

Transverse filaments in yeast are composed of the Zip1 protein, which carries an extensive central coiled-coil region that allows the formation of dimers or tetramers. Parallel dimer or tetramer units of Zip1 arrange in mirror-image fashion between aligned homologous axes, with their N termini overlapping at the SC midline (Dong and Roeder 2000; Voelkel-Meiman et al. 2013). The length of Zip1 coiled-coil units determines the width of the SC (Sym and Roeder 1995; Tung and Roeder 1998; Dong and Roeder 2000). A central element protein complex, composed of Ecm11 and Gmc2, organizes transverse filaments at the midline of the SC, a function dependent on Ecm11 SUMOylation (Humphryes et al. 2013; Voelkel-Meiman et al. 2013). Although cytological images give the impression of a fixed zipper-like structure, the SC is dynamic in nature as suggested by the capacity of the central region to dissolve and reassemble upon transient exposure to aliphatic alcohols (Rog et al. 2017). Furthermore, SC central region building block proteins continuously accumulate between homolog axes during the pachytene stage, again indicating that the SC is not a static structure (Voelkel-Meiman et al. 2012, 2016).

Although SC-like structures can form between nonhomologous chromosomes or even between sister chromatids (Loidl et al. 1991; Leu et al. 1998; Voelkel-Meiman et al. 2012), SC normally assembles between homologs, downstream of recombination initiation and homolog pairing (Sym et al. 1993). Thus, the extent of SC assembly depends strongly on early recombination events and fails altogether in spo11 mutants (Giroux et al. 1989; Henderson and Keeney 2004; Macqueen and Roeder 2009). In recombination-deficient cells, SC proteins instead self-assemble near the nucleolus into a singular aggregate called the polycomplex, which frequently appears to retain the tripartite structure of the SC (Klapholz et al. 1985; Sym and Roeder 1995). SC assembly is not restored to spo11 meiotic cells supplied with multiple DSBs generated by the HO endonuclease or arising from phleomycin exposure (Yisehak and Macqueen 2018), raising the possibility that Spo11-initiated recombination uniquely interfaces with the synapsis machinery.

Although most SC assembly events initiate at recombination sites (Fung et al. 2004; Henderson and Keeney 2004), the earliest SC assembly initiates at recombination-suppressed centromere regions (Tsubouchi et al. 2008). Synapsis initiation at centromeres is mechanistically distinct from the one operating at recombination sites. For example, while required for synapsis from recombination sites, the E3 ligase Zip3 is dispensable for SC assembly at centromeres. Conversely, in spo11 mutants, Zip3 together with the Fpr3 prolyl isomerase prevents unregulated SC assembly from centromeres (Macqueen and Roeder 2009).

ZMM proteins link recombination to SC assembly

ZMM proteins not only promote crossover recombination but also couple recombination physically and mechanistically to SC assembly (Agarwal and Roeder 2000; Börner et al. 2004; Tsubouchi et al. 2006; Shinohara et al. 2008). The E3 ligase Zip3, the endonuclease XPF-ERCC1-related ZZS subcomplex (Zip2, Zip4, Spo16), and the MutSγ complex co-localize with one another and with SC central region proteins (Zip1, Ecm11, Gmc2) at recombination sites, constituting the synapsis initiation complex (Fung et al. 2004). Several components of the ZMM group link the recombination complex with the SC and/or chromosome axis. Zip4 creates a physical link between recombination, the axis and the SC central region, as it interacts with both axis protein Red1 and SC central element protein Ecm11 (Humphryes et al. 2013; De Muyt et al. 2018; Arora and Corbett 2019; Pyatnitskaya et al. 2022). In addition, Zip3 mediates SUMOylation of axis protein Red1, which contributes to timely synapsis (Cheng et al. 2006; Eichinger and Jentsch 2010). Zip1 and Zip3 also mediate phosphorylation of Msh4 at its N-terminal degron region by DDK, protecting Msh4 from proteasomal degradation, and both Zip1 and Zip3 promote SUMOylation of Msh4 (He et al. 2020, 2021).

While ZMM complex proteins colocalize, they appear to have somewhat different effects on SC assembly. SC formation is abolished in mutants missing the ZZS complex (Chua and Roeder 1998; Tsubouchi et al. 2006; Shinohara et al. 2008), yet synapsis is only diminished and delayed in MutSγ mutants and in zip3 mutants, with some effects of strain background and incubation conditions (Agarwal and Roeder 2000; Börner et al. 2004). The relatively mild synapsis defect of zip3 mutants can largely be explained by Zip3's opposing roles in synapsis regulation at different chromosomal sites: whereas Zip3 promotes SC assembly from recombination sites, it prevents SC assembly from centromeres (Tsubouchi et al. 2008; Macqueen and Roeder 2009; Voelkel-Meiman et al. 2012). Finally, mutations in several additional factors, including the proteasome and protein phosphatase 4, share with zmm mutants defects in recombination, synapsis, and meiotic progression (Falk et al. 2010; Ahuja et al. 2017). These factors may act on ZMM proteins or contribute to additional pathways that coordinately affect recombination and synapsis.

The functional relationship between SC and recombination

Although SC central region proteins from different species exhibit limited sequence similarity, they invariably align homolog axes at a distance of ∼100 nm (Page and Hawley 2004). The SC's conserved width may be related to the tight functional relationship between SC proteins and recombination. In light of this possibility, it is intriguing that the average inter-junction distance of double Holliday junctions corresponds to ∼90 nm of B-form DNA (Cromie et al. 2006; Oh et al. 2008).

When Zip1 from the closely related yeast Kluyveromyces lactis is expressed in place of Zip1 from S. cerevisiae, it fails to support SC assembly, but still mediates double Holliday junction stabilization and crossover formation (Voelkel-Meiman et al. 2015). Furthermore, the absence of SC structural proteins Ecm11 and Gmc2 leads to excess MutSγ-mediated crossovers (Voelkel-Meiman et al. 2016). Thus, the SC structure is dispensable for meiotic recombination in budding yeast, and instead is required for limiting crossover recombination (Voelkel-Meiman et al. 2013, 2016). The anti-recombination function of budding yeast SC is explained at least in part by the capacity of SC central region proteins (i.e. Zip1 and Ecm11–Gmc2) to prevent excess DSBs (Thacker et al. 2014; Subramanian et al. 2016; Mu et al. 2020; Lee et al. 2021).

Although SC is dispensable for crossover recombination, it nevertheless forms the physical context for crossover-fated recombination intermediates, as evidenced by the localization of ZMM as well as MutLγ foci to the midline of SC structures (Agarwal and Roeder 2000; Novak et al. 2001; Voelkel-Meiman et al. 2019; Sanchez et al. 2020). While the function of the SC is presently unknown, it may serve a chaperone-like role in regulating interactions between proteins and/or DNA structures at recombination sites. Accordingly, SC central region proteins regulate aspects of recombination intermediate processing such as dHJ resolution, gene conversion tract length and continuity, as well as robust mismatch repair (Rockmill et al. 2013; Oke et al. 2014; Lee et al. 2021; Voelkel-Meiman et al. 2022).

Intriguingly, the SC transverse filament protein Zip1 serves a genetically-separable role in promoting MutSγ-mediated crossovers (Voelkel-Meiman et al. 2016; Voelkel-Meiman et al. 2019) and thus is itself classified as a ZMM factor (Börner et al. 2004). Adjacent regions within Zip1's N terminus independently promote either recombination or SC assembly, identifying this Zip1 domain as a regulatory hub that couples recombination and synapsis (Voelkel-Meiman et al. 2019). A role of Zip1 in linking recombination and synapsis is further suggested by coordinate effects on both processes of Cdc7-mediated, C-terminal Zip1 phosphorylation (Chen et al. 2015).

Spatial and temporal control of recombination

Recombination frequencies vary between genome regions

Around 90 crossovers are detected per meiotic nucleus in marker-rich hybrid strains, corresponding to a frequency of ∼7 crossovers per megabase (or ∼350 cM/Mb, compared to an average genetic map distance of 1 cM/Mb in humans) (Chen et al. 2008; Mancera et al. 2008). The ∼65 non-crossovers per meiotic nucleus occur in the same regions as crossovers, although there are regions with considerable biases towards either the crossover or the non-crossover outcome (Chen et al. 2008; Mancera et al. 2008). Finally, of the ∼170 DSBs in a given yeast nucleus, an estimated 15 undergo repair with the sister chromatid, although these recombination events are difficult to quantify as they do not leave traces in gamete genomes (Fig. 5) (Chen et al. 2008; Mancera et al. 2008; Marsolier-Kergoat et al. 2018).

Crossover rates vary more than 100-fold along the yeast genome, defining “hot” and “cold” regions. Frequencies of interhomolog recombination events largely correlate with DSB frequencies (Marsolier-Kergoat et al. 2018). While DSB hotspots tend to be associated with open chromatin, divergent promoters, GC content, and specific histone modifications, the factors that make some hotspots hotter than others remain poorly understood (Blitzblau et al. 2007; Buhler et al. 2007; Pan et al. 2011; Zhu and Keeney 2015; Gothwal et al. 2016). At a regional scale, DSB levels are inversely correlated with axial element-associated proteins including Red1/Hop1 as well as RMM (Blat et al. 2002; Panizza et al. 2011; Sun et al. 2015). Accordingly, the larger chromosome context may influence DSB frequency of a given hotspot sequence (Borde et al. 1999).

The three shortest yeast chromosomes exhibit notably higher DSB and crossover frequencies than the rest of the genome (Kaback et al. 1992; Blitzblau et al. 2007; Pan et al. 2011), a feature correlated with longer lasting recruitment of DSB formation factors such as Rec114 (Murakami et al. 2020). Increased DSB frequencies along shorter chromosomes are determined by intrinsic sequence elements as inferred from unchanged DSB frequencies when a smaller chromosome is fused to a larger one (Mu et al. 2020; Murakami et al. 2020). In addition, DSB formation in large (∼100 kb) chromosome-end adjacent regions is enhanced via increased retention of axis protein Hop1 in these regions (Subramanian et al. 2019).

In subtelomeric and pericentromeric regions as well as within the rDNA repeat cluster on yeast chromosome XII and adjacent regions, DSB and/or crossover frequencies are below average (San-Segundo and Roeder 1999; Chen et al. 2008; Mancera et al. 2008; Pan et al. 2011; Vader et al. 2011; Subramanian et al. 2019). DSBs in pericentromeric regions are kept at low levels by kinetochore proteins (Vincenten et al. 2015). Pericentromeric crossovers are further suppressed by Rec8- and Zip1-mediated direction of DSB repair towards the sister chromatid instead of the homolog (Lambie and Roeder 1988; Chen et al. 2008). In the genome region containing the rDNA repeat cluster, DSB formation is repressed through the histone deacetylase Sir2 and the condensin complex (Gottlieb and Esposito 1989; San-Segundo and Roeder 1999; Li et al. 2014). Sir2 likely acts by excluding the axis protein Hop1 from the rDNA (Gottlieb and Esposito 1989; San-Segundo and Roeder 1999). Intriguingly, in regions adjacent to the rDNA cluster, Sir2 has a DSB-inducing effect that is counteracted by the AAA-ATPase Pch2 and the origin-recognition complex factor Orc1, which together help remove Hop1 from chromosome axes in these regions (Vader et al. 2011; De Ioannes et al. 2019).

Control of crossover distribution

Each homolog pair, independent of size, must acquire at least one crossover to ensure homolog disjunction toward opposite spindle poles during meiosis I. If crossover placement followed a Poisson distribution, smaller chromosomes would frequently fail to acquire a crossover resulting in homolog missegregation (Kaback et al. 1992; Sym and Roeder 1994). The molecular pathway(s) that ensure formation of at least one (obligatory) chiasma per homolog pair are referred to as “crossover assurance” (Pazhayam et al. 2021). They likely include enhancements of DSB formation along small chromosomes and of interhomolog bias (above). At least two additional mechanisms dictate the genome-wide distribution pattern of crossovers. First, crossover interference, originally discovered when creating the first chromosome linkage maps in Drosophila (Sturtevant 1913), is a phenomenon whereby a given crossover reduces the likelihood of additional crossovers in nearby intervals, resulting in regular crossover spacing along homolog pairs (Pazhayam et al. 2021). Second, crossover homeostasis preferentially generates crossovers at the expense of non-crossovers when DSBs are limiting and/orhomolog bias is weak (Martini et al. 2006; Lao et al. 2013; Sandhu et al. 2020). The same mechanism appears to maintain the number of synapsis initiation sites at high levels (Henderson and Keeney 2004).

Crossover interference and crossover assurance

A first level of maximum spacing between recombination sites is established by mechanisms that prevent the clustered formation of DSBs along the same chromatid (Garcia et al. 2015). This DSB interference depends on activity of the ATM-like kinase Tel1 and extends over chromosome regions of at least 70 kb, but no more than 150 kb (Garcia et al. 2015). At a later step, though no later than DSB strand exchange, the interfering distribution of crossover-fated intermediates along chromosomes is established via a pathway that targets the catalytic activity of type-II topoisomerase Top2 via the SUMO and/or ubiquitin system (Zhang et al. 2014). Interference patterning of crossovers thus is controlled by proteins that constitute the meiotic chromosome axis, including Top2, which prominently localizes along the length of meiotic chromosomes and promotes a structural transition of chromosome axes (Klein et al. 1992; Borner et al. 2004; Heldrich et al. 2020). This pathway requires Sir2, though not its histone deacetylase activity, which recruits the heterodimeric SUMO-targeted ubiquitin ligase Slx5/8. It also requires SUMOylation of Top2 and interaction with SUMO of the axis protein Red1 (Zhang et al. 2014).

Both cytological and genetic measurements suggest that interference in budding yeast extends across ∼130 kb (corresponding to ∼0.4 micron of pachytene chromosome length) (Zhang et al. 2014). One proposed mechanism for crossover interference involves the establishment of physical tension along the semi-elastic chromosome axis, which is alleviated by a discontinuity in the axis—the site of the flaw being the site of crossover commitment, followed by maturation into an actual crossover. According to this model, relief of tension prevents additional crossovers over a certain distance (Kleckner 2006).

Until crossover-specific resolution of Holliday junctions has been completed, the crossover fate of interference-distributed strand exchange intermediates needs to be maintained, a task performed by ZMM proteins Zip1, Msh4/5, and Mer3, but independent of ZZS subcomplex components Spo16 and Zip4 (above) (Borner et al. 2004; Shinohara et al. 2008). Zip3 focus distribution indicates that crossover interference is correctly established in zip1 and other zmm mutants, even though crossovers detected in the resulting gametes do not exhibit an interference distribution (Sym and Roeder 1994; Nakagawa and Ogawa 1999; Novak et al. 2001; Fung et al. 2004; Zhang et al. 2014). Accordingly, ZMMs are dispensable for the establishment of interference, but critical for ensuring that crossover-designated ("class I") intermediates are successfully processed into crossovers (Fig. 5; Börner et al. 2004).

Non-interfering crossovers formed in absence of ZMM proteins are referred to as class II crossovers, to distinguish them from class I crossovers that exhibit interference (De Los Santos et al. 2003; Börner et al. 2004). Consistent with the idea that the class II recombination pathway is also active during wild-type meiosis, ∼70 class I ZMM foci per nucleus are observable cytologically, but ∼90 crossovers are detected genetically (Fung et al. 2004; Chen et al. 2008; Mancera et al. 2008; Joshi et al. 2009). Thus, the class II recombination pathway likely contributes about one fifth of crossovers, as further indicated by detection of ∼15 foci of the class II pathway resolvase Mms4 (Copsey et al. 2013). While dHJs formed along the class I pathway are resolved by MutLγ and its interaction partners, dHJs formed along the class II pathway are resolved by SSE Mms4/Mus81 as well as Slx1/4 (see “Processing of class II recombination events into crossovers and non-crossovers”) (De Muyt et al. 2012; Zakharyevich et al. 2012). Consistent with activity of Mms4/Mus81 along the class II pathway, crossover interference remains intact in the mms4 mutant, even though crossovers are substantially decreased, with additive effects of msh5 on crossover reduction (De Los Santos et al. 2003; Argueso et al. 2004). Consistent with a proposed role for the Sgs1 helicase in channeling recombination intermediates away from the class II and into the ZMM-dependent class I recombination pathway, crossover interference is impaired in the sgs1 mutant (Oh et al. 2007) and absence of Sgs1 results in increased crossover formation in zip1Δ (Jessop et al. 2006). Impaired interference in mutants that lack Dmc1 or the Dmc1-activator Tid1 further highlights the importance of appropriate DSB strand exchange for crossover interference (Shinohara et al. 2003; Lao et al. 2013).

Crossover homeostasis

At low DSB abundance, for example during early meiosis, or when DSBs are reduced in a hypomorphic spo11 mutant, a higher proportion of DSBs is repaired with the sister chromatid, likely because the homolog remains inaccessible due to incomplete recombination-dependent homolog pairing (Joshi et al. 2015; Sandhu et al. 2020). Among the remaining interhomolog recombination events, crossovers are enhanced at the expense of non-crossovers, a process referred to as crossover homeostasis (Martini et al. 2006; Sandhu et al. 2020). At the same time, high DSB levels are insufficient to ensure the obligate crossover, as certain zmm mutants frequently exhibit non-exchange chromosomes (E0 events) despite elevated DSB levels, likely because the class II recombination pathway lacks most aspects of crossover control, including crossover interference, assurance and homeostasis (Chen et al. 2008).

Downregulation of interhomolog recombination in late prophase I

At late prophase I, recombination is gradually attenuated through downregulation of DSB formation, and shifts from strong homolog bias again back to increased intersister repair (Thacker et al. 2014; Subramanian et al. 2016). This process is chromosome-autonomous and is strongly linked to Zip1 protein function. The effect of Zip1 is mediated in part through the recruitment of Pch2 and subsequent Pch2-dependent removal of Hop1, which results in a drop in DSB activity and releases the inhibition of intersister strand exchange by protein kinase Mek1 (San-Segundo and Roeder 1999; Börner et al. 2008; Subramanian et al. 2016).

The recombination checkpoint

Throughout prophase I, cells monitor the presence of stalled recombination complexes and/or unsynapsed chromosome axes using a surveillance mechanism that is often referred to as the recombination checkpoint or pachytene checkpoint (Xu et al. 1997; Macqueen and Hochwagen 2011; Subramanian and Hochwagen 2014; Raina et al. 2023). Prophase I delay/arrest triggered by this checkpoint depends on signaling by the DNA damage sensor kinases Tel1 and Mec1, and thus shares fundamental features with the canonical DDR network (Lydall et al. 1996; Usui et al. 2001). Tel1 responds primarily to Spo11-linked DNA ends whereas Mec1 relies on accessory factors, including Ddc2 and the Rad17/Mec3/Ddc1 complex, to sense ssDNA and ssDNA/dsDNA junctions, respectively (Usui et al. 2001; Hong and Roeder 2002; Refolio et al. 2011). Importantly, because unsynapsed regions continue to form DSBs, this checkpoint is also activated by defects in chromosome synapsis (San-Segundo and Roeder 1999; Hong and Roeder 2002; Thacker et al. 2014). Paradoxically, the absence of recombination intermediates (e.g. in spo11) does not trigger meiotic arrest, and indeed bypasses arrest in recombination defective mutants (McKee and Kleckner 1997a). Compared to the DDR, the substrate spectrum of Mec1 and Tel1 in the recombination checkpoint is greatly expanded to include numerous meiosis-specific proteins, presumably to help coordinate the progression of DSB repair with other meiotic processes (Kar et al. 2022). Recombination surveillance likely involves meiotic axis proteins, which, by a poorly understood mechanism dampen the activation of the canonical DDR effector kinase Rad53 and instead help activate the meiotic Rad53 paralogue Mek1, via the phosphorylation of HORMA domain protein Hop1, with possible involvement of a cytoplasmic component (Lydall et al. 1996; Carballo et al. 2008; Cartagena-Lirola et al. 2008; Herruzo et al. 2021). In addition to their monitoring function, checkpoint components also modulate the underlying recombination reaction, indicating that arrest bypass in checkpoint mutants may also involves changes in the monitored process (Grushcow et al. 1999; Börner et al. 2008). The recombination checkpoint is notably less sensitive to DSBs than the canonical DDR: Indeed, a single DSB fails to trigger a detectable response during meiotic prophase, and even dozens of persistent breaks in some cases fail to cause a terminal arrest (Malkova et al. 1996; Hochwagen et al. 2005).

Exit from prophase I

At the mid to late pachytene stage, activation of the meiosis-specific transcription factor Ndt80 leads to the increased expression of ∼150 “middle” genes. These middle genes encode factors that promote cellular events required for prophase exit, chromosome segregation, and spore morphogenesis (Xu et al. 1995; Chu et al. 1998; Primig et al. 2000).

Hallmark events of prophase I exit are triggered by polo-like kinase Cdc5

Exit from prophase I comprises an eventful cell-cycle transition involving: i) disassembly of SC and axial element structures, ii) resolution of double-Holliday-junctions, and iii) spindle-pole-body separation in preparation for formation of the meiosis I spindle (Fig. 6) (Shuster and Byers 1989; Xu et al. 1995). Induction of polo-like kinase Cdc5 by Ndt80 is sufficient to trigger several of these key prophase I exit events (Clyne et al. 2003; Sourirajan and Lichten 2008). Cdc5 likely stimulates SC disassembly at least in part by destabilizing the axial-element component Red1 (Clyne et al. 2003; Sourirajan and Lichten 2008; Prugar et al. 2017; Sanchez et al. 2020). Cdc5 further promotes Holliday junction resolution by associating with and activating MutLγ (Sanchez et al. 2020) as well as Mus81–Mms4 resolvases (De Los Santos et al. 2003; Jessop and Lichten 2008; Matos et al. 2011). Furthermore, Cdc5-dependent hyper-phosphorylation inhibits the Sgs1 DNA helicase, which potentially shifts recombination outcomes (Grigaitis et al. 2020). On the other hand, Cdc5 is not sufficient to promote spindle pole body separation during prophase exit. This event is instead promoted by M-phase CDK (Sourirajan and Lichten 2008), whose regulatory B-type cyclin components (Clb1, Clb4) are encoded by Ndt80 target genes (Chu and Herskowitz 1998; Leu and Roeder 1999).

Fig. 6. Signaling pathways at the exit from prophase I. Multiple signals control prophase exit by altering the capacity of Sum1 and Ndt80 to bind the Middle Sporulation DNA sequence Element (MSE). Illustration depicts positive and negative signals that control Ndt80 transcription factor activity. The Sum1 transcriptional repressor complex competes with Ndt80 for binding the MSE DNA element in the promoter regions of ∼150 genes. As meiotic prophase progresses, Ime2, Cdc28, and DDK kinase activities render Sum1 less capable of binding the MSE, while Ime2 activity stimulates Ndt80 binding the MSE. Proteins encoded by Ndt80 target genes (the “middle genes”) include Ime2 and Ndt80, both of which bolster the prophase exit circuit, the Cdc5 polo-like kinase, which promotes dHJ resolution and SC disassembly, and M-Cdk kinase, which promotes spindle pole body (SPB) separation. The prophase exit pathway is modulated by checkpoint signals: Unrepaired meiotic DSBs activate Mec1ATR/Tel1ATM kinases, which in turn activate the Swe1 and Mek1 kinases. Swe1 stimulates Sum1 repressor activity, while Mek1 inhibits Ndt80 activity.

Control of Ndt80-mediated middle-gene expression

Middle-gene (i.e. post-pachytene) expression is facilitated by an increase in Ndt80 activity (itself encoded by a middle gene) (Chu and Herskowitz 1998; Tung et al. 2000; Pak and Segall 2002) and the downregulation of the Sum1/Rfm1/Hst1 transcriptional repressor complex (Fig. 6) (Xie et al. 1999; Lindgren et al. 2000; Mccord et al. 2003). The Sum1/Rfm1/Hst1 repressor competes with Ndt80 for binding a DNA sequence element called the middle-sporulation element (MSE) in the promoters of middle genes (Winter 2012). Sum1 directly binds the MSE and is regulated by multiple kinases including Ime2, whose activity increases toward mid-prophase (Primig et al. 2000; Benjamin et al. 2003; Ahmed et al. 2009). Cdc28 also targets Sum1, which primes Sum1's further phosphorylation by DDK (Sopko et al. 2002; Lo et al. 2008; Corbi et al. 2014). Accumulation of phosphates eventually renders the Sum1 complex unable to bind the MSE, resulting in an increase in NDT80 transcripts (Pierce et al. 2003; Corbi et al. 2014). Conversely, phosphorylation by Ime2 renders the Ndt80 protein more effective at binding DNA and stimulating gene expression (Sopko et al. 2002; Benjamin et al. 2003; Sopko and Stuart 2004). Finally, Ndt80 increases transcription of IME2 and CDC5, which further stimulates Ndt80 activity in a feed-forward loop (Fig. 6) (Benjamin et al. 2003; Acosta et al. 2011; Gonzalez-Arranz et al. 2021).

Control of prophase I exit

Several mechanisms collaborate to ensure that cells do not exit prematurely from prophase I. Ama1, a meiosis-specific activator of the anaphase-promoting complex/cyclosome (APC/C), targets key proteins for proteasomal degradation that may otherwise destabilize prophase chromosomal structures and promote entry into metaphase I, including the cell-cycle regulators Ndd1 and Cdc5 (Okaz et al. 2012). Ama1 thereby renders meiotic cells dependent on Ndt80 for progression beyond the pachytene stage and through prophase exit. Ndt80 activity is in turn attenuated by the recombination checkpoint, which prevents or delays exit from prophase I in response to unprocessed recombination intermediates (above). To activate this checkpoint, the canonical DNA-damage sensor kinases Mec1ATR and Tel1ATM activate Mek1 kinase by phosphorylating its binding partner Hop1 early during meiosis, with additional effects on recombination partner choice (above) (Niu et al. 2005, 2007; Carballo et al. 2008). Mek1 kinase subsequently phosphorylates Ndt80 to diminish its DNA binding activity thereby ensuring that Ndt80 target genes, some of which promote JM resolution and progression beyond the pachytene stage, remain inactive until most DNA breaks are adequately processed (Chen et al. 2018). The recombination checkpoint also triggers Swe1 kinase activity, which indirectly stabilizes the Sum1 repressor complex via inhibitory phosphorylation of CDK (Shin et al. 2010). Finally, nuclear localization of Ndt80 is regulated by the recombination checkpoint, indicating that Ndt80 activity is also controlled by a spatial redistribution mechanism (Wang et al. 2011).

Meiotic commitment

When yeast cells in prophase I are shifted to rich growth medium, meiosis is aborted and diploid cells return to vegetative growth. Cells accomplish this “return to growth” process by rapidly degrading meiotic chromosomal structures and repairing recombination intermediates with minimal crossover formation (Zenvirth et al. 1997; Dayani et al. 2011). However, following Ndt80 activation and a step known as commitment, cells will complete meiosis regardless of a change in external cues [reviewed in (Winter 2012)]. Interestingly, commitment is extremely sensitive to Ndt80 dosage: When the abundance of NDT80 transcript is cut in half, the meiotic commitment point shifts such that even cells undergoing the meiosis I division will exit the meiotic program and initiate mitotic cell cycling (Tsuchiya et al. 2014). CDK kinase Ime2, polo-like kinase Cdc5, and 14-3-3 proteins Bmh1 and Bmh2 are critical for establishing and/or maintaining meiotic commitment (Gavade et al. 2022). Meiotic commitment furthermore relies on the combined action of the Rad53-mediated DNA damage checkpoint and the Bub2-mediated spindle position checkpoint pathways (Ballew and Lacefield 2019).

Metaphase I

Once cells have exited from prophase I, they initiate formation of the meiosis I spindle (Shirk et al. 2011; Kim et al. 2013; Newnham et al. 2013) and co-orient sister kinetochores to ensure that sister chromatids attach to the same spindle pole (Fig. 7, a–c). Monopolar attachment results from the meiosis I-specific fusion of sister kinetochores, such that the two kinetochores together present one attachment site for a single microtubule (Winey et al. 2005; Sarangapani et al. 2014). Fusion of sister kinetochores is brought about by monopolin, a protein complex composed of the meiosis-specific protein Mam1, the nucleolar factors Csm1 and Lrs4, and casein kinase Hrr25 (CK1δ/ε) (Fig. 7a) (Toth et al. 2000; Rabitsch et al. 2003; Petronczki et al. 2006). Upon prophase I exit, Csm1 and Lrs4 leave the nucleolus and join Mam1, Hrr25, condensin, and Zip1 at kinetochores (Rabitsch et al. 2003; Brito et al. 2010; Prajapati et al. 2018). Csm1 and Lrs4 form a heterotetrameric V-like structure that directly binds kinetochore components and is thought to physically clamp together sister kinetochores (Monje-Casas et al. 2007; Corbett et al. 2010; Corbett and Harrison 2012). Monopolin relocalization to kinetochores depends on the concerted action of DDK, Cdc5 (Lee and Amon 2003; Valentin et al. 2006; Monje-Casas et al. 2007; Lo et al. 2008; Matos et al. 2008), and the kinetochore-specific Cdc5-targeting factor “meikin” (meiosis-specific kinetochore factor) Spo13 (Klapholz and Esposito 1980; Katis, Matos, et al. 2004; Lee et al. 2004; Matos et al. 2008).

Fig. 7. Chromosome disjunction during meiosis I and II. a) Following prophase I exit, the monopolin complex (Mam1, Lrs4, Csm1, Hrr25) is assembled at kinetochores to regulate the attachment of kinetochores from both sister chromatids to the same microtubule of the meiosis I spindle. b) Monopolin (depicted as a brown bar) fuses sister kinetochores during meiosis I to ensure monopolar attachment. Monopolin dissociates prior to meiosis II to allow bipolar attachment of sister kinetochores as also seen in mitosis. c) Stepwise loss of cohesion. At the metaphase I/anaphase I transition, cohesin is specifically cleaved along the chromosome arms resulting in dissolution of chiasmata and the disjunction of homologous chromosomes. Cohesin complexes in the pericentromeric regions (∼25 kb to either side of the centromere) are protected from cleavage by separase and provide sister chromatid cohesion during metaphase II. Loss of centromeric cohesion at anaphase II allows separation of sister chromatids.

Even with co-oriented kinetochores, accurate meiosis I chromosome segregation requires that each sister pair only attaches to microtubules from one spindle pole and that the sister-pairs of the homologous partner chromosome attach to opposite poles (Fig. 7b) (Marston 2014). As in mitotic cells, proper orientation is continuously probed by the formation of kinetochore-microtubules attachments and their subsequent severing induced by Ipl1 (Aurora B) kinase (Monje-Casas et al. 2007; Meyer et al. 2013, 2021; Cairo et al. 2020). When bipolar attachment is achieved, spindle forces are resisted by crossovers together with sister chromatid cohesion along chromosome arms that link recombinant homologous chromosomes (Buonomo et al. 2000). The resulting tension physically pulls kinetochores away from the central spindle where Aurora B is localized, thereby stabilizing microtubule attachments (Liu et al. 2009). The accuracy of this process strongly relies on the distance of crossover sites from centromeres. Homologous chromosomes whose only crossovers are positioned close to the telomere are more likely to missegregate (Ross et al. 1996), whereas chromosomes that fail to form a chiasma (the physical manifestation of an interhomolog crossover event) within ∼180 kb of the centromere additionally require the spindle assembly checkpoint component Mad2 for faithful bipolar attachment (Shonn et al. 2003; Lacefield and Murray 2007).

Chromosomes that fail to form a crossover altogether (E0 or NEC—non-exchange chromosomes) present a particular problem for this system. Because even correct bipolar attachment does not lead to cohesion-dependent tension between NEC pairs, additional backup mechanisms are necessary to promote their segregation (Dawson et al. 1986). These mechanisms include the spindle assembly checkpoint as well as Zip1-dependent centromere associations. The spindle assembly checkpoint may provide additional time for proper NEC alignment (Shonn et al. 2003; Cheslock et al. 2005; Newnham et al. 2010). At the same time, the spindle checkpoint in yeast is quite weak in preventing the meiosis I division, as Mad2 delays meiosis I in mutants that entirely lack any crossover linkage between homologs (e.g. spo11) by only ∼2 hours after which meiotic progression occurs even without bipolar homolog attachment (Shonn et al. 2000). Persisting Zip1 during metaphase I provides physical connections between homologous centromeres, substituting for the lack of chiasmata, in contrast to Zip1-mediated leptotene-coupling which involves homology-independent associations. Zip1-dependent linkages by physically connecting centromeres at metaphase I (Loidl et al. 1994; Guerra and Kaback 1999; Kemp et al. 2004; Tsubouchi and Roeder 2005; Gladstone et al. 2009; Bardhan et al. 2010; Newnham et al. 2010; Kurdzo et al. 2018; Previato De Almeida et al. 2019). Yet, the system of distributive segregation begins to break down once more than two NECs are present (Dawson et al. 1986).

Metaphase I to anaphase I transition

Anaphase I initiates once all homologous chromosome pairs have formed bipolar attachments. As in mitosis, stable bipolar attachment is monitored by the spindle assembly checkpoint, which detects unattached kinetochores and blocks the APC/C by inhibiting its activator Cdc20 (Shonn et al. 2000, 2002, 2003; Tsuchiya et al. 2011). Following kinetochore attachment, Cdc20 is free to associate with the APC/C to form a multi-subunit E3 ubiquitin ligase, which targets the anaphase inhibitor securin (Pds1) for proteasome-mediated degradation (Salah and Nasmyth 2000; Shonn et al. 2000; Oelschlaegel et al. 2005; Penkner et al. 2005). Pds1 is an inhibitory chaperone for separase Esp1, and its destruction allows separase to eliminate cohesin along chromosome arms through proteolytic cleavage of its kleisin subunit Rec8 (Buonomo et al. 2000). Esp1 cleaves Rec8 at two redundant sites within the protein, which leads to cohesin's dissociation and homolog separation (Klein et al. 1999; Buonomo et al. 2000). Efficient Rec8 cleavage requires its phosphorylation by multiple kinases, including DDK, CK1δ/ε, and Cdc5 (Brar et al. 2006; Petronczki et al. 2006; Matos et al. 2008; Katis et al. 2010). The activity of these kinases is constrained to the metaphase/anaphase transition by meikin Spo13, which counters the activity of cohesin kinases (Galander et al. 2019).

Whereas cohesins along chromosome arms are cleaved and/or removed prior to anaphase I, centromeric cohesion is maintained through meiosis I to allow proper tension-mediated alignment of sister chromatids in metaphase II (Fig. 7c). Overall cohesin binding is enriched around centromeres (Glynn et al. 2004) and establishment of stable centromeric cohesion requires the helicase Chl1 and a specialized replication factor C complex (RF-C Ctf18/Dcc1/Ctf8) (Petronczki et al. 2004). As cells enter anaphase I, centromeric cohesin is protected from separase-mediated cleavage by the shugoshin protein Sgo1 (Klein et al. 1999; Shonn et al. 2002; Katis, Galova, et al. 2004; Katis, Matos, et al. 2004; Kitajima et al. 2004; Marston et al. 2004; Kiburz et al. 2005). Sgo1, together with Aurora kinase Ipl1, recruits two alternative forms of phosphatase PP2A that act in parallel to prevent cohesin cleavage: PP2A associated with its regulatory subunit Rts1 (PP2A-Rts1) dephosphorylates Rec8, thereby protecting it from separase cleavage (Kitajima et al. 2006; Riedel et al. 2006; Tang et al. 2006; Yu and Koshland 2007; Xu et al. 2009), whereas PP2A-Cdc55 counters separase activation (Clift et al. 2009). Together, these mechanisms ensure that centromeric cohesion persists until metaphase II.

Transitioning from meiosis I to meiosis II

The transition from meiosis I to meiosis II requires a transient drop in CDK activity to drive telophase I spindle disassembly and spindle pole body reduplication (Buonomo et al. 2003; Marston et al. 2003; Carlile and Amon 2008). A reduction in CDK activity is mediated by the temporary release of Cdc14 phosphatase from the nucleolus in anaphase I triggered by the FEAR signaling network (Kamieniecki et al. 2000; Buonomo et al. 2003; Marston et al. 2003; Sullivan et al. 2008). Once the spindle is disassembled, Cdc14 returns to the nucleolus and a rise in CDK activity (Cdc28 in association with cyclins Clb1 and Clb4) initiates the assembly of the two meiosis II spindles (Dahmann and Futcher 1995; Buonomo et al. 2003; Marston et al. 2003; Monje-Casas et al. 2007). Cells with an inactive FEAR network or hyperactive CDK fail to segregate their nucleolus and do not complete the meiotic spindle cycle. Instead, they undergo two rounds of chromosome segregation on a single spindle (Buonomo et al. 2003; Marston et al. 2003; Fuchs and Loidl 2004; Kerr et al. 2011), leading to the formation of diploid spores that exhibit a mix of reductional and equational segregation (Klapholz and Esposito 1980; Sharon and Simchen 1990; Hugerat and Simchen 1993; Kamieniecki et al. 2000; Zeng and Saunders 2000; Pfiz et al. 2002).

In mitotic cells, the telophase drop in CDK activity relicenses replication origins for another round of replication (Diffley 2010). During the meiosis I-to-meiosis II transition, this relicensing is prevented by the persistent activity of Ime2 (Benjamin et al. 2003; Phizicky et al. 2018), whose target sites are largely resistant to dephosphorylation by Cdc14 (Holt et al. 2007). Accordingly, deregulated Ime2 exhibits synthetic phenotypes with FEAR network mutants (Schindler and Winter 2006). Nevertheless, mutants that replicate their DNA between meiosis I and meiosis II have not been identified, although deregulation of CDK can cause multiple rounds of replication during prophase I (Strich et al. 2004; Rice et al. 2005; Sawarynski et al. 2009).

At the end of anaphase I, Spo13 and Mam1 are degraded, and Csm1 and Lrs4 return to the nucleolus, preparing chromosomes for meiosis II (Rabitsch et al. 2003; Katis, Matos, et al. 2004; Sullivan and Morgan 2007; Matos et al. 2008). The resulting loss of kinetochore mono-orientation allows Sgo1 along with Ipl1 to promote the bipolar attachment of sister kinetochores on the metaphase II spindle (Monje-Casas et al. 2007; Kiburz et al. 2008; Nerusheva et al. 2014). In addition, any remaining DSBs are repaired (Cartagena-Lirola et al. 2008) and leftover dHJs are removed by meiosis-II-specific activation of the Yen1 resolvase (Matos et al. 2011). Finally, anaphase II is triggered by a second round of Esp1 activation, Sgo1 degradation and pericentromeric Rec8 cleavage, which is sufficient to separate sister chromatids and yield the four haploid products of meiosis (Buonomo et al. 2000; Salah and Nasmyth 2000; Mengoli et al. 2021).

Non-chromosomal genetic elements in meiosis

Although the meiotic program is primarily geared toward ensuring the faithful inheritance of chromosomal DNA, meiosis is also a time of extraordinary activity for extra-chromosomal and extra-nuclear genetic elements. Mitochondria undergo a series of gross morphological changes during prophase I (Miyakawa et al. 1984; Gorsich and Shaw 2004) and ultimately detach from the cell cortex in an Ndt80-dependent manner to associate with meiotic nuclei during meiosis I and II (Miyakawa et al. 1984; Sawyer et al. 2019). This nuclear attachment is thought to promote mitochondrial inheritance (Gorsich and Shaw 2004; Suda et al. 2007), although only about 50% of mitochondrial genomes are ultimately packaged into spores (Brewer and Fangman 1980). Intriguingly, parasitic M and L double-stranded RNAs, which exist as virus-like particles in the cytoplasm, use poorly understood mechanisms to also promote their packaging into spores (Brewer and Fangman 1980). The ultimate abundance of these RNAs is constrained by Nuc1 endonuclease, which is released from mitochondria upon Ndt80 activation (Gao et al. 2019) and also degrades nuclei that failed to become encapsulated into spores (Eastwood et al. 2012). At the same time, retrotransposon RNAs become highly expressed at the end of prophase I by taking advantage of Ndt80-dependent regulation (Laureau et al. 2021), whereas aging-associated extra-chromosomal rDNA circles are preferentially eliminated (Unal et al. 2011; King et al. 2019). Meiosis, therefore, is a time of major reorganization of non-chromosomal and mobile genetic elements.

Outlook

Budding yeast was established as a model organism for meiosis in the 1970s, and over 3,000 papers have since reported findings using this system. Yeast has provided increasingly detailed insights into the temporal and functional relationship between the molecular events of DNA metabolism and chromosome morphogenesis at the microscopic level. Studies in other organisms have demonstrated that the processes of meiosis and the meiotic machinery are evolutionarily conserved in higher eukaryotes. At the same time, many questions remain unresolved: How do homologous chromosomes identify each other during the pairing process? How are frequency and outcome of recombination events in different chromosome regions controlled? How are different pathways of meiotic DSB processing coordinated? And how are chromosomal events coordinated with the pathways operating under the control of the cytoplasmic machinery? Many of these open questions revolve around interactions between players that lack physical contacts, between chromosome loops and axes, between different regions along the same chromosome, and between different cellular compartments. These interactions imply signaling processes that remain to be discovered. Furthermore, many of the molecular pathways identified in meiosis involve components also expressed in vegetative cells, raising the possibility that the same processes also integrate mitotic cellular function. Future work may show that processes in DNA metabolism and chromosome morphogenesis previously thought to be limited to meiosis have equivalents in mitotically dividing cells (Kleckner et al. 2004). The experience from the first 50 years of molecular meiosis research suggests that studies in budding yeast could well be at the forefront of these discoveries.

Acknowledgements

We appreciate the significant contributions of all members of the meiosis community and regret that not all primary investigations could be acknowledged directly.

Funding

Research reported in this publication was supported by the National Institute Of General Medical Sciences of the National Institutes of Health under Award Numbers R01GM125800 (GVB), R35GM148223 (AH), and R15GM116109 (AJM). The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.
==== Refs
Literature cited

Acosta  I, Ontoso  D, San-Segundo  PA. The budding yeast polo-like kinase Cdc5 regulates the Ndt80 branch of the meiotic recombination checkpoint pathway. Mol Biol Cell. 2011;22 (18 ):3478–3490. doi:10.1091/mbc.e11-06-0482.21795394
Acquaviva  L, Szekvolgyi  L, Dichtl  B, Dichtl  BS, de La Roche Saint Andre  C, Nicolas  A, Géli  V. The COMPASS subunit Spp1 links histone methylation to initiation of meiotic recombination. Science. 2013;339 (6116 ):215–218. doi:10.1126/science.1225739.23160953
Agarwala  SD, Blitzblau  HG, Hochwagen  A, Fink  GR. RNA methylation by the MIS complex regulates a cell fate decision in yeast. PLoS Genet. 2012;8 (6 ):e1002732. doi:10.1371/journal.pgen.1002732.
Agarwal  S, Roeder  GS. Zip3 provides a link between recombination enzymes and synaptonemal complex proteins. Cell. 2000;102 (2 ):245–255. doi:10.1016/S0092-8674(00)00029-5.10943844
Ahmed  NT, Bungard  D, Shin  ME, Moore  M, Winter  E. The Ime2 protein kinase enhances the disassociation of the Sum1 repressor from middle meiotic promoters. Mol Cell Biol. 2009;29 (16 ):4352–4362. doi:10.1128/MCB.00305-09.19528232
Ahuja  JS, Borner  GV. Analysis of meiotic recombination intermediates by two-dimensional gel electrophoresis. In: Tsubouchi H, editor. DNA recombination: methods and protocols, Vol. 745. Humana Press; 2011. p. 99–116.
Ahuja  JS, Harvey  CS, Wheeler  DL, Lichten  M. Repeated strand invasion and extensive branch migration are hallmarks of meiotic recombination. Mol Cell. 2021;81 (20 ):4258–4270.e4. doi:10.1016/j.molcel.2021.08.003.34453891
Ahuja  JS, Sandhu  R, Mainpal  R, Lawson  C, Henley  H, Hunt  PA, Yanowitz  JL, Börner  G. Control of meiotic pairing and recombination by chromosomally tethered 26S proteasome. Science. 2017;355 (6323 ):408–411. doi:10.1126/science.aaf4778.28059715
Alani  E, Padmore  R, Kleckner  N. Analysis of wild-type and rad50 mutants of yeast suggests an intimate relationship between meiotic chromosome synapsis and recombination. Cell. 1990;61 (3 ):419–436. doi:10.1016/0092-8674(90)90524-I.2185891
Allers  T, Lichten  M. Differential timing and control of noncrossover and crossover recombination during meiosis. Cell. 2001a;106 (1 ):47–57. doi:10.1016/S0092-8674(01)00416-0.11461701
Allers  T, Lichten  M. Intermediates of yeast meiotic recombination contain heteroduplex DNA. Mol Cell. 2001b;8 (1 ):225–231. doi:10.1016/S1097-2765(01)00280-5.11511375
Anand  R, Ranjha  L, Cannavo  E, Cejka  P. Phosphorylated CtIP functions as a co-factor of the MRE11-RAD50-NBS1 endonuclease in DNA end resection. Mol Cell. 2016;64 (5 ):940–950. doi:10.1016/j.molcel.2016.10.017.27889449
Argueso  JL, Wanat  J, Gemici  Z, Alani  E. Competing crossover pathways act during meiosis in Saccharomyces cerevisiae. Genetics. 2004;168 (4 ):1805–1816. doi:10.1534/genetics.104.032912.15611158
Arora  K, Corbett  KD. The conserved XPF:ERCC1-like Zip2:Spo16 complex controls meiotic crossover formation through structure-specific DNA binding. Nucleic Acids Res. 2019;47 (5 ):2365–2376. doi:10.1093/nar/gky1273.30566683
Arora  S, Deshpande  RA, Budd  M, Campbell  J, Revere  A, Zhang  X, Schmidt  KH, Paull  TT. Genetic separation of Sae2 nuclease activity from Mre11 nuclease functions in budding yeast. Mol Cell Biol. 2017;37 (24 ):e00156-17. doi:10.1128/MCB.00156-17.
Arora  C, Kee  K, Maleki  S, Keeney  S. Antiviral protein Ski8 is a direct partner of Spo11 in meiotic DNA break formation, independent of its cytoplasmic role in RNA metabolism. Mol Cell. 2004;13 (4 ):549–559. doi:10.1016/S1097-2765(04)00063-2.14992724
Bailis  JM, Roeder  GS. Synaptonemal complex morphogenesis and sister-chromatid cohesion require Mek1-dependent phosphorylation of a meiotic chromosomal protein. Genes Dev. 1998;12 (22 ):3551–3563. doi:10.1101/gad.12.22.3551.9832507
Ballew  O, Lacefield  S. The DNA damage checkpoint and the spindle position checkpoint maintain meiotic commitment in Saccharomyces cerevisiae. Curr Biol. 2019;29 (3 ):449–460.e2. doi:10.1016/j.cub.2018.12.043.30686741
Bani Ismail  M, Shinohara  M, Shinohara  A. Dot1-dependent histone H3K79 methylation promotes the formation of meiotic double-strand breaks in the absence of histone H3K4 methylation in budding yeast. PLoS One. 2014;9 (5 ):e96648. doi:10.1371/journal.pone.0096648.
Bardhan  A, Chuong  H, Dawson  DS. Meiotic cohesin promotes pairing of nonhomologous centromeres in early meiotic prophase. Mol Biol Cell. 2010;21 (11 ):1799–1809. doi:10.1091/mbc.e09-05-0392.20375150
Bell  LR, Byers  B. Homologous association of chromosomal DNA during yeast meiosis. Cold Spring Harb Symp Quant Biol. 1983;47 (Pt 2 ):829–840. doi:10.1101/SQB.1983.047.01.095.6345078
Benjamin  KR, Zhang  C, Shokat  KM, Herskowitz  I. Control of landmark events in meiosis by the CDK Cdc28 and the meiosis-specific kinase Ime2. Genes Dev. 2003;17 (12 ):1524–1539. doi:10.1101/gad.1101503.12783856
Bergerat  A, de Massy  B, Gadelle  D, Varoutas  PC, Nicolas  A, Forterre  P. An atypical topoisomerase II from Archaea with implications for meiotic recombination. Nature. 1997;386 (6623 ):414–417. doi:10.1038/386414a0.9121560
Bishop  DK . RecA homologs Dmc1 and Rad51 interact to form multiple nuclear complexes prior to meiotic chromosome synapsis. Cell. 1994;79 (6 ):1081–1092. doi:10.1016/0092-8674(94)90038-8.7528104
Bishop  DK, Park  D, Xu  L, Kleckner  N. DMC1: a meiosis-specific yeast homolog of E. coli RecA required for recombination, synaptonemal complex formation, and cell cycle progression. Cell. 1992;69 (3 ):439–456. doi:10.1016/0092-8674(92)90446-J.1581960
Blat  Y, Kleckner  N. Cohesins bind to preferential sites along yeast chromosome III, with differential regulation along arms versus the centric region. Cell. 1999;98 (2 ):249–259. doi:10.1016/S0092-8674(00)81019-3.10428036
Blat  Y, Protacio  RU, Hunter  N, Kleckner  N. Physical and functional interactions among basic chromosome organizational features govern early steps of meiotic chiasma formation. Cell. 2002;111 (6 ):791–802. doi:10.1016/S0092-8674(02)01167-4.12526806
Blitzblau  HG, Bell  GW, Rodriguez  J, Bell  SP, Hochwagen  A. Mapping of meiotic single-stranded DNA reveals double-stranded-break hotspots near centromeres and telomeres. Curr Biol. 2007;17 (23 ):2003–2012. doi:10.1016/j.cub.2007.10.066.18060788
Blitzblau  HG, Chan  CS, Hochwagen  A, Bell  SP. Separation of DNA replication from the assembly of break-competent meiotic chromosomes. PLoS Genet. 2012;8 (5 ):e1002643. doi:10.1371/journal.pgen.1002643.
Blitzblau  HG, Hochwagen  A. ATR/Mec1 prevents lethal meiotic recombination initiation on partially replicated chromosomes in budding yeast. eLife. 2013;2 :e00844. doi:10.7554/eLife.00844.
Borde  V, Goldman  AS, Lichten  M. Direct coupling between meiotic DNA replication and recombination initiation. Science. 2000;290 (5492 ):806–809. doi:10.1126/science.290.5492.806.11052944
Borde  V, Lin  W, Novikov  E, Petrini  JH, Lichten  M, Nicolas  A. Association of Mre11p with double-strand break sites during yeast meiosis. Mol Cell. 2004;13 (3 ):389–401. doi:10.1016/S1097-2765(04)00034-6.14967146
Borde  V, Robine  N, Lin  W, Bonfils  S, Geli  V, Nicolas  A. Histone H3 lysine 4 trimethylation marks meiotic recombination initiation sites. EMBO J. 2009;28 (2 ):99–111. doi:10.1038/emboj.2008.257.19078966
Borde  V, Wu  TC, Lichten  M. Use of a recombination reporter insert to define meiotic recombination domains on chromosome III of Saccharomyces cerevisiae. Mol Cell Biol. 1999;19 (7 ):4832–4842. doi:10.1128/MCB.19.7.4832.10373533
Börner  GV, Barot  A, Kleckner  N. Yeast Pch2 promotes domainal axis organization, timely recombination progression, and arrest of defective recombinosomes during meiosis. Proc Natl Acad Sci U S A. 2008;105 (9 ):3327–3332. doi:10.1073/pnas.0711864105.18305165
Börner  GV, Cha  RS. Induction and analysis of synchronous meiotic yeast cultures. Cold Spring Harb Protoc. 2015;2015 (10 ):908–913. doi:10.1101/pdb.prot085035.26430251
Börner  GV, Kleckner  N, Hunter  N. Crossover/noncrossover differentiation, synaptonemal complex formation, and regulatory surveillance at the leptotene/zygotene transition of meiosis. Cell. 2004;117 (1 ):29–45. doi:10.1016/S0092-8674(04)00292-2.15066280
Brar  GA, Hochwagen  A, Ee  LS, Amon  A. The multiple roles of cohesin in meiotic chromosome morphogenesis and pairing. Mol Biol Cell. 2009;20 (3 ):1030–1047. doi:10.1091/mbc.e08-06-0637.19073884
Brar  GA, Kiburz  BM, Zhang  Y, Kim  JE, White  F, Amon  A. Rec8 phosphorylation and recombination promote the step-wise loss of cohesins in meiosis. Nature. 2006;441 (7092 ):532–536. doi:10.1038/nature04794.16672979
Brar  GA, Yassour  M, Friedman  N, Regev  A, Ingolia  NT, Weissman  JS. High-resolution view of the yeast meiotic program revealed by ribosome profiling. Science. 2012;335 (6068 ):552–557. doi:10.1126/science.1215110.22194413
Brewer  BJ, Fangman  WL. Preferential inclusion of extrachromosomal genetic elements in yeast meiotic spores. Proc Natl Acad Sci U S A. 1980;77 (9 ):5380–5384. doi:10.1073/pnas.77.9.5380.7001477
Brito  IL, Yu  H-G, Amon  A. Condensins promote coorientation of sister chromatids during meiosis I in budding yeast. Genetics. 2010;185 (1 ):55–64. doi:10.1534/genetics.110.115139.20194961
Brown  MS, Grubb  J, Zhang  A, Rust  MJ, Bishop  DK. Small Rad51 and Dmc1 complexes often co-occupy both ends of a meiotic DNA double strand break. PLoS Genet. 2015;11 (12 ):e1005653. doi:10.1371/journal.pgen.1005653.
Buhler  C, Borde  V, Lichten  M. Mapping meiotic single-strand DNA reveals a new landscape of DNA double-strand breaks in Saccharomyces cerevisiae. PLoS Biol. 2007;5 (12 ):e324. doi:10.1371/journal.pbio.0050324.18076285
Buonomo  SB, Clyne  RK, Fuchs  J, Loidl  J, Uhlmann  F, Nasmyth  K. Disjunction of homologous chromosomes in meiosis I depends on proteolytic cleavage of the meiotic cohesin Rec8 by separin. Cell. 2000;103 (3 ):387–398. doi:10.1016/S0092-8674(00)00131-8.11081626
Buonomo  SB, Rabitsch  KP, Fuchs  J, Gruber  S, Sullivan  M, Uhlmann  F, Petronczki  M, Tóth  A, Nasmyth  K. Division of the nucleolus and its release of CDC14 during anaphase of meiosis I depends on separase, SPO12, and SLK19. Dev Cell. 2003;4 (5 ):727–739. doi:10.1016/S1534-5807(03)00129-1.12737807
Burgess  SM, Kleckner  N, Weiner  BM. Somatic pairing of homologs in budding yeast: existence and modulation. Genes Dev. 1999;13 (12 ):1627–1641. doi:10.1101/gad.13.12.1627.10385630
Bushkin  GG, Pincus  D, Morgan  JT, Richardson  K, Lewis  C, Chan  SH, Bartel  DP, Fink  GR. M(6)A modification of a 3′ UTR site reduces RME1 mRNA levels to promote meiosis. Nat Commun. 2019;10 (1 ):3414. doi:10.1038/s41467-019-11232-7.31363087
Busygina  V, Sehorn  MG, Shi  IY, Tsubouchi  H, Roeder  GS, Sung  P. Hed1 regulates Rad51-mediated recombination via a novel mechanism. Genes Dev. 2008;22 (6 ):786–795. doi:10.1101/gad.1638708.18347097
Cairo  G, MacKenzie  AM, Lacefield  S. Differential requirement for Bub1 and Bub3 in regulation of meiotic versus mitotic chromosome segregation. J Cell Biol. 2020;219 (4 ):e201909136. doi:10.1083/jcb.201909136.
Callender  TL, Laureau  R, Wan  L, Chen  X, Sandhu  R, Laljee  S, Zhou  S, Suhandynata  RT, Prugar  E, Gaines  WA, et al  Mek1 down regulates Rad51 activity during yeast meiosis by phosphorylation of Hed1. PLoS Genet. 2016;12 (8 ):e1006226. doi:10.1371/journal.pgen.1006226.
Cannavo  E, Cejka  P. Sae2 promotes dsDNA endonuclease activity within Mre11–Rad50–Xrs2 to resect DNA breaks. Nature. 2014;514 (7520 ):122–125. doi:10.1038/nature13771.25231868
Cannavo  E, Sanchez  A, Anand  R, Ranjha  L, Hugener  J, Adam  C, Acharya  A, Weyland  N, Aran-Guiu  X, Charbonnier  J-B, et al  Regulation of the MLH1–MLH3 endonuclease in meiosis. Nature. 2020;586 (7830 ):618–622. doi:10.1038/s41586-020-2592-2.32814904
Cao  L, Alani  E, Kleckner  N. A pathway for generation and processing of double-strand breaks during meiotic recombination in S. cerevisiae. Cell. 1990;61 (6 ):1089–1101. doi:10.1016/0092-8674(90)90072-M.2190690
Carballo  JA, Johnson  AL, Sedgwick  SG, Cha  RS. Phosphorylation of the axial element protein Hop1 by Mec1/Tel1 ensures meiotic interhomolog recombination. Cell. 2008;132 (5 ):758–770. doi:10.1016/j.cell.2008.01.035.18329363
Carlile  TM, Amon  A. Meiosis I is established through division-specific translational control of a cyclin. Cell. 2008;133 (2 ):280–291. doi:10.1016/j.cell.2008.02.032.18423199
Cartagena-Lirola  H, Guerini  I, Manfrini  N, Lucchini  G, Longhese  MP. Role of the Saccharomyces cerevisiae Rad53 checkpoint kinase in signaling double-strand breaks during the meiotic cell cycle. Mol Cell Biol. 2008;28 (14 ):4480–4493. doi:10.1128/MCB.00375-08.18505828
Cartagena-Lirola  H, Guerini  I, Viscardi  V, Lucchini  G, Longhese  MP. Budding yeast Sae2 is an in vivo target of the Mec1 and Tel1 checkpoint kinases during meiosis. Cell Cycle. 2006;5 (14 ):1549–1559. doi:10.4161/cc.5.14.2916.16861895
Cha  RS, Weiner  BM, Keeney  S, Dekker  J, Kleckner  N. Progression of meiotic DNA replication is modulated by interchromosomal interaction proteins, negatively by Spo11p and positively by Rec8p. Genes Dev. 2000;14 (4 ):493–503. doi:10.1101/gad.14.4.493.10691741
Chan  Y-L, Zhang  A, Weissman  BP, Bishop  DK. RPA resolves conflicting activities of accessory proteins during reconstitution of Dmc1-mediated meiotic recombination. Nucleic Acids Res. 2019;47 (2 ):747–761. doi:10.1093/nar/gky1160.30462332
Chen  X, Gaglione  R, Leong  T, Bednor  L, de Los Santos  T, Luk  E, Airola  M, Hollingsworth  NM. Mek1 coordinates meiotic progression with DNA break repair by directly phosphorylating and inhibiting the yeast pachytene exit regulator Ndt80. PLoS Genet. 2018;14 (11 ):e1007832. doi:10.1371/journal.pgen.1007832.
Chen  J, Tresenrider  A, Chia  M, McSwiggen  DT, Spedale  G, Jorgensen  V, Liao  H, van Werven  FJ, Ünal  E. Kinetochore inactivation by expression of a repressive mRNA. eLife. 2017;6 :e27417. doi:10.7554/eLife.27417.
Chen  SY, Tsubouchi  T, Rockmill  B, Sandler  JS, Richards  DR, Vader  G, Hochwagen  A, Roeder  GS, Fung  JC. Global analysis of the meiotic crossover landscape. Dev Cell. 2008;15 (3 ):401–415. doi:10.1016/j.devcel.2008.07.006.18691940
Chen  X, Suhandynata  RT, Sandhu  R, Rockmill  B, Mohibullah  N, Niu  H, Liang  J, Lo  HC, Miller  DE, Zhou  Het al  Phosphorylation of the synaptonemal complex protein Zip1 regulates the crossover/noncrossover decision during Yeast Meiosis. PLoS Biol. 2015;13 (12 ):e1002329. doi:10.1371/journal.pbio.1002329.26682552
Cheng  C-H, Lo  Y-H, Liang  S-S, Ti  S-C, Lin  F-M, Yeh  C-H, Huang  H-Y, Wang  T-F. SUMO modifications control assembly of synaptonemal complex and polycomplex in meiosis of Saccharomyces cerevisiae. Genes Dev. 2006;20 (15 ):2067–2081. doi:10.1101/gad.1430406.16847351
Cheslock  PS, Kemp  BJ, Boumil  RM, Dawson  DS. The roles of MAD1, MAD2 and MAD3 in meiotic progression and the segregation of nonexchange chromosomes. Nat Genet. 2005;37 (7 ):756–760. doi:10.1038/ng1588.15951820
Chia  M, Tresenrider  A, Chen  J, Spedale  G, Jorgensen  V, Ünal  E, van Werven  FJ. Transcription of a 5′ extended mRNA isoform directs dynamic chromatin changes and interference of a downstream promoter. eLife. 2017;6 :e27420. doi:10.7554/eLife.27420.
Chu  S, DeRisi  J, Eisen  M, Mulholland  J, Botstein  D, Brown  PO, Herskowitz  I. The transcriptional program of sporulation in budding yeast. Science. 1998;282 (5389 ):699–705. doi:10.1126/science.282.5389.699.9784122
Chu  S, Herskowitz  I. Gametogenesis in yeast is regulated by a transcriptional cascade dependent on Ndt80. Mol Cell. 1998;1 (5 ):685–696. doi:10.1016/S1097-2765(00)80068-4.9660952
Chua  PR, Roeder  GS. Zip2, a meiosis-specific protein required for the initiation of chromosome synapsis. Cell. 1998;93 (3 ):349–359. doi:10.1016/S0092-8674(00)81164-2.9590170
Claeys Bouuaert  C, Tischfield  SE, Pu  S, Mimitou  EP, Arias-Palomo  E, Berger  JM, Keeney  S. Structural and functional characterization of the Spo11 core complex. Nat Struct Mol Biol. 2021;28 (1 ):92–102. doi:10.1038/s41594-020-00534-w.33398171
Clancy  MJ, Shambaugh  ME, Timpte  CS, Bokar  JA. Induction of sporulation in Saccharomyces cerevisiae leads to the formation of N6-methyladenosine in mRNA: a potential mechanism for the activity of the IME4 gene. Nucleic Acids Res. 2002;30 (20 ):4509–4518. doi:10.1093/nar/gkf573.12384598
Clift  D, Bizzari  F, Marston  AL. Shugoshin prevents cohesin cleavage by PP2A(Cdc55)-dependent inhibition of separase. Genes Dev. 2009;23 (6 ):766–780. doi:10.1101/gad.507509.19299562
Cloud  V, Chan  Y-L, Grubb  J, Budke  B, Bishop  DK. Rad51 is an accessory factor for Dmc1-mediated joint molecule formation during meiosis. Science. 2012;337 (6099 ):1222–1225. doi:10.1126/science.1219379.22955832
Clyne  RK, Katis  VL, Jessop  L, Benjamin  KR, Herskowitz  I, Lichten  M, Nasmyth  K. Polo-like kinase Cdc5 promotes chiasmata formation and cosegregation of sister centromeres at meiosis I. Nat Cell Biol. 2003;5 (5 ):480–485. doi:10.1038/ncb977.12717442
Collins  I, Newlon  CS. Chromosomal DNA replication initiates at the same origins in meiosis and mitosis. Mol Cell Biol. 1994;14 (5 ):3524–3534. doi:10.1128/mcb.14.5.3524-3534.1994.8164697
Colomina  N, Gari  E, Gallego  C, Herrero  E, Aldea  M. G1 cyclins block the ime1 pathway to make mitosis and meiosis incompatible in budding yeast. EMBO J. 1999;18 (2 ):320–329. doi:10.1093/emboj/18.2.320.9889189
Conrad  MN, Dominguez  AM, Dresser  ME. Ndj1p, a meiotic telomere protein required for normal chromosome synapsis and segregation in yeast. Science. 1997;276 (5316 ):1252–1255. doi:10.1126/science.276.5316.1252.9157883
Conrad  MN, Lee  C-Y, Chao  G, Shinohara  M, Kosaka  H, Shinohara  A., Conchello  J-A, Dresser  ME. Rapid telomere movement in meiotic prophase is promoted by NDJ1, MPS3, and CSM4 and is modulated by recombination. Cell. 2008;133 (7 ):1175–1187. doi:10.1016/j.cell.2008.04.047.18585352
Conrad  MN, Lee  C-Y, Wilkerson  JL, Dresser  ME. MPS3 mediates meiotic bouquet formation in Saccharomyces cerevisiae. Proc Natl Acad Sci U S A. 2007;104 (21 ):8863–8868. doi:10.1073/pnas.0606165104.17495028
Copsey  A, Tang  S, Jordan  PW, Blitzblau  HG, Newcombe  S, Chan  AC, Newnham  L, Li  Z, Gray  S, Herbert  AD, et al  Smc5/6 coordinates formation and resolution of joint molecules with chromosome morphology to ensure meiotic divisions. PLoS Genet. 2013;9 (12 ):e1004071. doi:10.1371/journal.pgen.1004071.
Corbett  KD, Harrison  SC. Molecular architecture of the yeast monopolin complex. Cell Rep. 2012;1 (6 ):583–589. doi:10.1016/j.celrep.2012.05.012.22813733
Corbett  KD, Yip  CK, Ee  L-S, Walz  T, Amon  A, Harrison  SC. The monopolin complex crosslinks kinetochore components to regulate chromosome-microtubule attachments. Cell. 2010;142 (4 ):556–567. doi:10.1016/j.cell.2010.07.017.20723757
Corbi  D, Sunder  S, Weinreich  M, Skokotas  A, Johnson  ES, Winter  E. Multisite phosphorylation of the Sum1 transcriptional repressor by S-phase kinases controls exit from meiotic prophase in yeast. Mol Cell Biol. 2014;34 (12 ):2249–2263. doi:10.1128/MCB.01413-13.24710277
Crickard  JB, Kaniecki  K, Kwon  Y, Sung  P, Greene  EC. Spontaneous self-segregation of Rad51 and Dmc1 DNA recombinases within mixed recombinase filaments. J Biol Chem. 2018;293 (11 ):4191–4200. doi:10.1074/jbc.RA117.001143.29382724
Crickard  JB, Kwon  Y, Sung  P, Greene  EC. Dynamic interactions of the homologous pairing 2 (Hop2)-meiotic nuclear divisions 1 (Mnd1) protein complex with meiotic presynaptic filaments in budding yeast. J Biol Chem. 2019;294 (2 ):490–501. doi:10.1074/jbc.RA118.006146.30420424
Cromie  GA, Hyppa  RW, Taylor  AF, Zakharyevich  K, Hunter  N, Smith  GR. Single Holliday junctions are intermediates of meiotic recombination. Cell. 2006;127 (6 ):1167–1178. doi:10.1016/j.cell.2006.09.050.17174892
Dahmann  C, Futcher  B. Specialization of B-type cyclins for mitosis or meiosis in S. cerevisiae. Genetics. 1995;140 (3 ):957–963. doi:10.1093/genetics/140.3.957.7672594
Davidson  IF, Bauer  B, Goetz  D, Tang  W, Wutz  G, Peters  J-M. DNA loop extrusion by human cohesin. Science. 2019;366 (6471 ):1338–1345. doi:10.1126/science.aaz3418.31753851
Dawson  DS, Murray  AW, Szostak  JW. An alternative pathway for meiotic chromosome segregation in yeast. Science. 1986;234 (4777 ):713–717. doi:10.1126/science.3535068.3535068
Dayani  Y, Simchen  G, Lichten  M. Meiotic recombination intermediates are resolved with minimal crossover formation during return-to-growth, an analogue of the mitotic cell cycle. PLoS Genet. 2011;7 (5 ):e1002083. doi:10.1371/journal.pgen.1002083.
De Ioannes  P, Leon  VA, Kuang  Z, Wang  M, Boeke  JD, Hochwagen  A, Armache  K-J. Structure and function of the Orc1 BAH-nucleosome complex. Nat Commun. 2019;10 (1 ):2894. doi:10.1038/s41467-019-10609-y.31263106
de los Santos  T, Hollingsworth  NM. Red1p, a MEK1-dependent phosphoprotein that physically interacts with Hop1p during meiosis in yeast. J Biol Chem. 1999;274 (3 ):1783–1790. doi:10.1074/jbc.274.3.1783.9880561
de los Santos  T, Hunter  N, Lee  C, Larkin  B, Loidl  J, Hollingsworth  NM. The Mus81/Mms4 endonuclease acts independently of double-Holliday junction resolution to promote a distinct subset of crossovers during meiosis in budding yeast. Genetics. 2003;164 (1 ):81–94. doi:10.1093/genetics/164.1.81.12750322
de Massy  B, Rocco  V, Nicolas  A. The nucleotide mapping of DNA double-strand breaks at the CYS3 initiation site of meiotic recombination in Saccharomyces cerevisiae. EMBO J. 1995;14 (18 ):4589–4598. doi:10.1002/j.1460-2075.1995.tb00138.x.7556102
De Muyt  A, Jessop  L, Kolar  E, Sourirajan  A, Chen  J, Dayani  Y, Lichten  M. BLM helicase ortholog Sgs1 is a central regulator of meiotic recombination intermediate metabolism. Mol Cell. 2012;46 (1 ):43–53. doi:10.1016/j.molcel.2012.02.020.22500736
De Muyt  A, Pyatnitskaya  A, Andreani  J, Ranjha  L, Ramus  C, Laureau  R, Fernandez-Vega  A, Holoch  D, Girard  E, Govin  J, et al  A meiotic XPF–ERCC1-like complex recognizes joint molecule recombination intermediates to promote crossover formation. Genes Dev. 2018;32 (3-4 ):283–296. doi:10.1101/gad.308510.117.29440262
Diffley  JF . The many faces of redundancy in DNA replication control. Cold Spring Harb Symp Quant Biol. 2010;75 (0 ):135–142. doi:10.1101/sqb.2010.75.062.21502406
Dirick  L, Goetsch  L, Ammerer  G, Byers  B. Regulation of meiotic S phase by Ime2 and a Clb5,6-associated kinase in Saccharomyces cerevisiae. Science. 1998;281 (5384 ):1854–1857. doi:10.1126/science.281.5384.1854.9743499
Dong  H, Roeder  GS. Organization of the yeast Zip1 protein within the central region of the synaptonemal complex. J Cell Biol. 2000;148 (3 ):417–426. doi:10.1083/jcb.148.3.417.10662769
Dresser  ME, Ewing  DJ, Conrad  MN, Dominguez  AM, Barstead  R, Jiang  H, Kodadek  T. DMC1 functions in a Saccharomyces cerevisiae meiotic pathway that is largely independent of the RAD51 pathway. Genetics. 1997;147 (2 ):533–544. doi:10.1093/genetics/147.2.533.9335591
Eastwood  MD, Cheung  SW, Lee  KY, Moffat  J, Meneghini  MD. Developmentally programmed nuclear destruction during yeast gametogenesis. Dev Cell. 2012;23 (1 ):35–44. doi:10.1016/j.devcel.2012.05.005.22727375
Eichinger  CS, Jentsch  S. Synaptonemal complex formation and meiotic checkpoint signaling are linked to the lateral element protein Red1. Proc Natl Acad Sci U S A. 2010;107 (25 ):11370–1135. doi:10.1073/pnas.1004248107.20534433
Engebrecht  JA, Voelkel-Meiman  K, Roeder  GS. Meiosis-specific RNA splicing in yeast. Cell. 1991;66 (6 ):1257–1268. doi:10.1016/0092-8674(91)90047-3.1840507
Falk  JE, Chan  AC, Hoffmann  E, Hochwagen  A. A Mec1- and PP4-dependent checkpoint couples centromere pairing to meiotic recombination. Dev Cell. 2010;19 (4 ):599–611. doi:10.1016/j.devcel.2010.09.006.20951350
Ferrari  SR, Grubb  J, Bishop  DK. The Mei5–Sae3 protein complex mediates Dmc1 activity in Saccharomyces cerevisiae. J Biol Chem. 2009;284 (18 ):11766–11770. doi:10.1074/jbc.C900023200.19270307
Forterre  P, Gribaldo  S, Gadelle  D, Serre  M-C. Origin and evolution of DNA topoisomerases. Biochimie. 2007;89 (4 ):427–446. doi:10.1016/j.biochi.2006.12.009.17293019
Fuchs  J, Loidl  J. Behaviour of nucleolus organizing regions (NORs) and nucleoli during mitotic and meiotic divisions in budding yeast. Chromosome Res. 2004;12 (5 ):427–438. doi:10.1023/B:CHRO.0000034726.05374.db.15252239
Fung  JC, Rockmill  B, Odell  M, Roeder  GS. Imposition of crossover interference through the nonrandom distribution of synapsis initiation complexes. Cell. 2004;116 (6 ):795–802. doi:10.1016/S0092-8674(04)00249-1.15035982
Galander  S, Barton  RE, Borek  WE, Spanos  C, Kelly  DA, Robertson  D, Rappsilber  J, Marston  AL. Reductional meiosis I chromosome segregation is established by coordination of key meiotic kinases. Dev Cell. 2019;49 (4 ):526–541 .e5. doi:10.1016/j.devcel.2019.04.003.31031198
Ganji  M, Shaltiel  IA, Bisht  S, Kim  E, Kalichava  A, Haering  CH, Dekker  C. Real-time imaging of DNA loop extrusion by condensin. Science. 2018;360 (6384 ):102–105. doi:10.1126/science.aar7831.29472443
Gao  J, Chau  S, Chowdhury  F, Zhou  T, Hossain  S, McQuibban  GA, Meneghini  MD. Meiotic viral attenuation through an ancestral apoptotic pathway. Proc Natl Acad Sci U S A. 2019;116 (33 ):16454–16462. doi:10.1073/pnas.1900751116.31266891
Garcia  V, Gray  S, Allison  RM, Cooper  TJ, Neale  MJ. Tel1(ATM)-mediated interference suppresses clustered meiotic double-strand-break formation. Nature. 2015;520 (7545 ):114–118. doi:10.1038/nature13993.25539084
Garcia  V, Phelps  SE, Gray  S, Neale  MJ. Bidirectional resection of DNA double-strand breaks by Mre11 and Exo1. Nature. 2011;479 (7372 ):241–244. doi:10.1038/nature10515.22002605
Gasior  SL, Olivares  H, Ear  U, Hari  DM, Weichselbaum  R, Bishop  DK. Assembly of RecA-like recombinases: distinct roles for mediator proteins in mitosis and meiosis. Proc Natl Acad Sci U S A. 2001;98 (15 ):8411–8418. doi:10.1073/pnas.121046198.11459983
Gasior  SL, Wong  AK, Kora  Y, Shinohara  A, Bishop  DK. Rad52 associates with RPA and functions with rad55 and rad57 to assemble meiotic recombination complexes. Genes Dev. 1998;12 (14 ):2208–2221. doi:10.1101/gad.12.14.2208.9679065
Gavade  JN, Puccia  CM, Herod  SG, Trinidad  JC, Berchowitz  LE, Lacefield  S. Identification of 14-3-3 proteins, polo kinase, and RNA-binding protein Pes4 as key regulators of meiotic commitment in budding yeast. Curr Biol. 2022;32 (7 ):1534–1547 .e9. doi:10.1016/j.cub.2022.02.022.35240051
Gerton  JL, DeRisi  J, Shroff  R, Lichten  M, Brown  PO, Petes  TD. Global mapping of meiotic recombination hotspots and coldspots in the yeast Saccharomyces cerevisiae. Proc Natl Acad Sci U S A. 2000;97 (21 ):11383–11390. doi:10.1073/pnas.97.21.11383.11027339
Giroux  CN, Dresser  ME, Tiano  HF. Genetic control of chromosome synapsis in yeast meiosis. Genome. 1989;31 (1 ):88–94. doi:10.1139/g89-017.2687110
Gladstone  MN, Obeso  D, Chuong  H, Dawson  DS. The synaptonemal complex protein Zip1 promotes bi-orientation of centromeres at meiosis I. PLoS Genet. 2009;5 (12 ):e1000771. doi:10.1371/journal.pgen.1000771.
Glynn  EF, Megee  PC, Yu  HG, Mistrot  C, Unal  E, Koshland  DE, DeRisi  JL, Gerton  JL. Genome-wide mapping of the cohesin complex in the yeast Saccharomyces cerevisiae. PLoS Biol. 2004;2 (9 ):E259. doi:10.1371/journal.pbio.0020259.15309048
Goldfarb  T, Lichten  M. Frequent and efficient use of the sister chromatid for DNA double-strand break repair during budding yeast meiosis. PLoS Biol. 2010;8 (10 ):e1000520. doi:10.1371/journal.pbio.1000520.
Goldman  AS, Lichten  M. The efficiency of meiotic recombination between dispersed sequences in Saccharomyces cerevisiae depends upon their chromosomal location. Genetics. 1996;144 (1 ):43–55. doi:10.1093/genetics/144.1.43.8878672
Goldman  AS, Lichten  M. Restriction of ectopic recombination by interhomolog interactions during Saccharomyces cerevisiae meiosis. Proc Natl Acad Sci U S A. 2000;97 (17 ):9537–9542. doi:10.1073/pnas.97.17.9537.10944222
Gonzalez-Arranz  S, Acosta  I, Carballo  JA, Santos  B, San-Segundo  PA. The N-terminal region of the polo kinase Cdc5 is required for downregulation of the meiotic recombination checkpoint. Cells. 2021;10 (10 ):2561. doi:10.3390/cells10102561.34685541
Gorsich  SW, Shaw  JM. Importance of mitochondrial dynamics during meiosis and sporulation. Mol Biol Cell. 2004;15 (10 ):4369–4381. doi:10.1091/mbc.e03-12-0875.15254264
Gothwal  SK, Patel  NJ, Colletti  MM, Sasanuma  H, Shinohara  M, Hochwagen  A, Shinohara  A. The double-strand break landscape of meiotic chromosomes is shaped by the Paf1 transcription elongation complex in Saccharomyces cerevisiae. Genetics. 2016;202 (2 ):497–512. doi:10.1534/genetics.115.177287.26627841
Gottlieb  S, Esposito  RE. A new role for a yeast transcriptional silencer gene, SIR2, in regulation of recombination in ribosomal DNA. Cell. 1989;56 (5 ):771–776. doi:10.1016/0092-8674(89)90681-8.2647300
Grigaitis  R, Ranjha  L, Wild  P, Kasaciunaite  K, Ceppi  I, Kissling  V, Henggeler  A, Susperregui  A, Peter  M, Seidel  R, et al  Phosphorylation of the RecQ helicase Sgs1/BLM controls its DNA unwinding activity during meiosis and mitosis. Dev Cell. 2020;53 (6 ):706–723 .e5. doi:10.1016/j.devcel.2020.05.016.32504558
Grushcow  JM, Holzen  TM, Park  KJ, Weinert  T, Lichten  M, Bishop  DK. Saccharomyces cerevisiae checkpoint genes MEC1, RAD17 and RAD24 are required for normal meiotic recombination partner choice. Genetics. 1999;153 (2 ):607–620. doi:10.1093/genetics/153.2.607.10511543
Guerra  CE, Kaback  DB. The role of centromere alignment in meiosis I segregation of homologous chromosomes in Saccharomyces cerevisiae. Genetics. 1999;153 (4 ):1547–1560. doi:10.1093/genetics/153.4.1547.10581265
Haber  JE, Leung  WY, Borts  RH, Lichten  M. The frequency of meiotic recombination in yeast is independent of the number and position of homologous donor sequences: implications for chromosome pairing. Proc Natl Acad Sci U S A. 1991;88 (4 ):1120–1124. doi:10.1073/pnas.88.4.1120.1996313
He  W, Rao  H, Tang  S, Bhagwat  N, Kulkarni  DS, Ma  Y, Chang  MAW, Hall  C, Bragg  JW, Manasca  HS, et al  Regulated proteolysis of MutSγ controls meiotic crossing over. Mol Cell. 2020;78 (1 ):168–183 .e5. doi:10.1016/j.molcel.2020.02.001.32130890
He  W, Verhees  GF, Bhagwat  N, Yang  Y, Kulkarni  DS, Lombardo  Z, Lahiri  S, Roy  P, Zhuo  J, Dang  B, et al  SUMO fosters assembly and functionality of the MutSγ complex to facilitate meiotic crossing over. Dev Cell. 2021;56 (14 ):2073–2088 .e3. doi:10.1016/j.devcel.2021.06.012.34214491
Heldrich  J, Milano  CR, Markowitz  TE, Ur  SN, Vale-Silva  LA, Corbett  KD, Hochwagen  A. Two pathways drive meiotic chromosome axis assembly in Saccharomyces cerevisiae. Nucleic Acids Res. 2022;50 (8 ):4545–4556. doi:10.1093/nar/gkac227.35412621
Heldrich  J, Sun  X, Vale-Silva  LA, Markowitz  TE, Hochwagen  A. Topoisomerases modulate the timing of meiotic DNA breakage and chromosome morphogenesis in Saccharomyces cerevisiae. Genetics. 2020;215 (1 ):59–73. doi:10.1534/genetics.120.303060.32152049
Henderson  KA, Kee  K, Maleki  S, Santini  PA, Keeney  S. Cyclin-dependent kinase directly regulates initiation of meiotic recombination. Cell. 2006;125 (7 ):1321–1332. doi:10.1016/j.cell.2006.04.039.16814718
Henderson  KA, Keeney  S. Tying synaptonemal complex initiation to the formation and programmed repair of DNA double-strand breaks. Proc Natl Acad Sci U S A. 2004;101 (13 ):4519–4524. doi:10.1073/pnas.0400843101.15070750
Herruzo  E, Lago-Maciel  A, Baztan  S, Santos  B, Carballo  JA, San-Segundo  PA. Pch2 orchestrates the meiotic recombination checkpoint from the cytoplasm. PLoS Genet. 2021;17 (7 ):e1009560. doi:10.1371/journal.pgen.1009560.
Hochwagen  A, Tham  WH, Brar  GA, Amon  A. The FK506 binding protein Fpr3 counteracts protein phosphatase 1 to maintain meiotic recombination checkpoint activity. Cell. 2005;122 (6 ):861–873. doi:10.1016/j.cell.2005.07.010.16179256
Hollingsworth  NM, Goetsch  L, Byers  B. The HOP1 gene encodes a meiosis-specific component of yeast chromosomes. Cell. 1990;61 (1 ):73–84. doi:10.1016/0092-8674(90)90216-2.2107981
Hollingsworth  NM, Ponte  L, Halsey  C. MSH5, a novel MutS homolog, facilitates meiotic reciprocal recombination between homologs in Saccharomyces cerevisiae but not mismatch repair. Genes Dev. 1995;9 (14 ):1728–1739. doi:10.1101/gad.9.14.1728.7622037
Holt  LJ, Hutti  JE, Cantley  LC, Morgan  DO. Evolution of Ime2 phosphorylation sites on Cdk1 substrates provides a mechanism to limit the effects of the phosphatase Cdc14 in meiosis. Mol Cell. 2007;25 (5 ):689–702. doi:10.1016/j.molcel.2007.02.012.17349956
Holzen  TM, Shah  PP, Olivares  HA, Bishop  DK. Tid1/Rdh54 promotes dissociation of Dmc1 from nonrecombinogenic sites on meiotic chromatin. Genes Dev. 2006;20 (18 ):2593–2604. doi:10.1101/gad.1447106.16980587
Hong  S, Joo  JH, Yun  H, Kleckner  N, Kim  KP. Recruitment of Rec8, Pds5 and Rad61/Wapl to meiotic homolog pairing, recombination, axis formation and S-phase. Nucleic Acids Res. 2019;47 (22 ):11691–11708. doi:10.1093/nar/gkz903.31617566
Hong  EJ, Roeder  GS. A role for Ddc1 in signaling meiotic double-strand breaks at the pachytene checkpoint. Genes Dev. 2002;16 (3 ):363–376. doi:10.1101/gad.938102.11825877
Hong  S, Sung  Y, Yu  M, Lee  M, Kleckner  N, Kim  KP. The logic and mechanism of homologous recombination partner choice. Mol Cell. 2013;51 (4 ):440–453. doi:10.1016/j.molcel.2013.08.008.23973374
Hugerat  Y, Simchen  G. Mixed segregation and recombination of chromosomes and YACs during single-division meiosis in spo13 strains of Saccharomyces cerevisiae. Genetics. 1993;135 (2 ):297–308. doi:10.1093/genetics/135.2.297.8243995
Humphryes  N, Leung  WK, Argunhan  B, Terentyev  Y, Dvorackova  M, Tsubouchi  H. The Ecm11-Gmc2 complex promotes synaptonemal complex formation through assembly of transverse filaments in budding yeast. PLoS Genet. 2013;9 (1 ):e1003194. doi:10.1371/journal.pgen.1003194.
Hunter  N, Kleckner  N. The single-end invasion: an asymmetric intermediate at the double-strand break to double-Holliday junction transition of meiotic recombination. Cell. 2001;106 (1 ):59–70. doi:10.1016/S0092-8674(01)00430-5.11461702
Jambhekar  A, Amon  A. Control of meiosis by respiration. Curr Biol. 2008;18 (13 ):969–975. doi:10.1016/j.cub.2008.05.047.18595705
Jessop  L, Lichten  M. Mus81/Mms4 endonuclease and Sgs1 helicase collaborate to ensure proper recombination intermediate metabolism during meiosis. Mol Cell. 2008;31 (3 ):313–323. doi:10.1016/j.molcel.2008.05.021.18691964
Jessop  L, Rockmill  B, Roeder  GS, Lichten  M. Meiotic chromosome synapsis-promoting proteins antagonize the anti-crossover activity of sgs1. PLoS Genet. 2006;2 (9 ):e155. doi:10.1371/journal.pgen.0020155.17002499
Jin  H, Guacci  V, Yu  H-G. Pds5 is required for homologue pairing and inhibits synapsis of sister chromatids during yeast meiosis. J Cell Biol. 2009;186 (5 ):713–725. doi:10.1083/jcb.200810107.19736318
Jin  Q, Trelles-Sticken  E, Scherthan  H, Loidl  J. Yeast nuclei display prominent centromere clustering that is reduced in nondividing cells and in meiotic prophase. J Cell Biol. 1998;141 (1 ):21–29. doi:10.1083/jcb.141.1.21.9531545
Jinks-Robertson  S, Petes  TD. High-frequency meiotic gene conversion between repeated genes on nonhomologous chromosomes in yeast. Proc Natl Acad Sci U S A. 1985;82 (10 ):3350–3354. doi:10.1073/pnas.82.10.3350.3889906
Jinks-Robertson  S, Sayeed  S, Murphy  T. Meiotic crossing over between nonhomologous chromosomes affects chromosome segregation in yeast. Genetics. 1997;146 (1 ):69–78. doi:10.1093/genetics/146.1.69.9136001
Johnson  D, Crawford  M, Cooper  T, Claeys Bouuaert  C, Keeney  S, Llorente  B, Garcia  V, Neale  MJ. Concerted cutting by Spo11 illuminates meiotic DNA break mechanics. Nature. 2021;594 (7864 ):572–576. doi:10.1038/s41586-021-03389-3.34108687
Joshi  N, Barot  A, Jamison  C, Börner  GV. Pch2 links chromosome axis remodeling at future crossover sites and crossover distribution during yeast meiosis. PLoS Genet. 2009;5 (7 ):e1000557. doi:10.1371/journal.pgen.1000557.
Joshi  N, Brown  MS, Bishop  DK, Börner  GV. Gradual implementation of the meiotic recombination program via checkpoint pathways controlled by global DSB levels. Mol Cell. 2015;57 (5 ):797–811. doi:10.1016/j.molcel.2014.12.027.25661491
Juneau  K, Palm  C, Miranda  M, Davis  RW. High-density yeast-tiling array reveals previously undiscovered introns and extensive regulation of meiotic splicing. Proc Natl Acad Sci U S A. 2007;104 (5 ):1522–1527. doi:10.1073/pnas.0610354104.17244705
Kaback  DB, Guacci  V, Barber  D, Mahon  JW. Chromosome size-dependent control of meiotic recombination. Science. 1992;256 (5054 ):228–232. doi:10.1126/science.1566070.1566070
Kadyk  LC, Hartwell  LH. Sister chromatids are preferred over homologs as substrates for recombinational repair in Saccharomyces cerevisiae. Genetics. 1992;132 (2 ):387–402. doi:10.1093/genetics/132.2.387.1427035
Kamieniecki  RJ, Shanks  RM, Dawson  DS. Slk19p is necessary to prevent separation of sister chromatids in meiosis I. Curr Biol. 2000;10 (19 ):1182–1190. doi:10.1016/S0960-9822(00)00723-5.11050386
Kang  H-A, Shin  H-C, Kalantzi  A-S, Toseland  CP, Kim  H-M, Gruber  S, Peraro  MD, Oh  B-H. Crystal structure of Hop2–Mnd1 and mechanistic insights into its role in meiotic recombination. Nucleic Acids Res. 2015;43 (7 ):3841–3856. doi:10.1093/nar/gkv172.
Kar  FM, Vogel  C, Hochwagen  A. Meiotic DNA breaks activate a streamlined phospho-signaling response that largely avoids protein-level changes. Life Sci Alliance. 2022;5 (10 ):e202201454. doi:10.26508/lsa.202201454.
Kassir  Y, Adir  N, Boger-Nadjar  E, Raviv  NG, Rubin-Bejerano  I, Sagee  S, Shenhar  G. Transcriptional regulation of meiosis in budding yeast. Int Rev Cytol. 2003;224 :111–171. doi:10.1016/S0074-7696(05)24004-4.12722950
Kassir  Y, Granot  D, Simchen  G. IME1, a positive regulator gene of meiosis in S. cerevisiae. Cell. 1988;52 (6 ):853–862. doi:10.1016/0092-8674(88)90427-8.3280136
Katis  VL, Galova  M, Rabitsch  KP, Gregan  J, Nasmyth  K. Maintenance of cohesin at centromeres after meiosis I in budding yeast requires a kinetochore-associated protein related to MEI-S332. Curr Biol. 2004;14 (7 ):560–572. doi:10.1016/j.cub.2004.03.001.15062096
Katis  VL, Lipp  JJ, Imre  R, Bogdanova  A, Okaz  E, Habermann  B, Mechtler  K, Nasmyth  K, Zachariae  W. Rec8 phosphorylation by casein kinase 1 and Cdc7-Dbf4 kinase regulates cohesin cleavage by separase during meiosis. Dev Cell. 2010;18 (3 ):397–409. doi:10.1016/j.devcel.2010.01.014.20230747
Katis  VL, Matos  J, Mori  S, Shirahige  K, Zachariae  W, Nasmyth  K. Spo13 facilitates monopolin recruitment to kinetochores and regulates maintenance of centromeric cohesion during yeast meiosis. Curr Biol. 2004;14 (24 ):2183–2196. doi:10.1016/j.cub.2004.12.020.15620645
Kaur  H, De Muyt  A, Lichten  M. Top3-Rmi1 DNA single-strand decatenase is integral to the formation and resolution of meiotic recombination intermediates. Mol Cell. 2015;57 (4 ):583–594. doi:10.1016/j.molcel.2015.01.020.25699707
Keeney  S, Giroux  CN, Kleckner  N. Meiosis-specific DNA double-strand breaks are catalyzed by Spo11, a member of a widely conserved protein family. Cell. 1997;88 (3 ):375–384. doi:10.1016/S0092-8674(00)81876-0.9039264
Kemp  B, Boumil  RM, Stewart  MN, Dawson  DS. A role for centromere pairing in meiotic chromosome segregation. Genes Dev. 2004;18 (16 ):1946–1951. doi:10.1101/gad.1227304.15289462
Kerr  GW, Sarkar  S, Tibbles  KL, Petronczki  M, Millar  JBA, Arumugam  P. Meiotic nuclear divisions in budding yeast require PP2A(Cdc55)-mediated antagonism of Net1 phosphorylation by Cdk. J Cell Biol. 2011;193 (7 ):1157–1166. doi:10.1083/jcb.201103019.21690311
Kiburz  BM, Amon  A, Marston  AL. Shugoshin promotes sister kinetochore biorientation in Saccharomyces cerevisiae. Mol Biol Cell. 2008;19 (3 ):1199–1209. doi:10.1091/mbc.e07-06-0584.18094053
Kiburz  BM, Reynolds  DB, Megee  PC, Marston  AL, Lee  BH, Lee  TI, Levine  SS, Young  RA, Amon  A. The core centromere and Sgo1 establish a 50-kb cohesin-protected domain around centromeres during meiosis I. Genes Dev. 2005;19 (24 ):3017–3030. doi:10.1101/gad.1373005.16357219
Kim  S, Meyer  R, Chuong  H, Dawson  DS. Dual mechanisms prevent premature chromosome segregation during meiosis. Genes Dev. 2013;27 (19 ):2139–2146. doi:10.1101/gad.227454.113.24115770
Kim  Y, Rosenberg  SC, Kugel  CL, Kostow  N, Rog  O, Davydov  V, Su  TY, Dernburg  AF, Corbett  KD. The chromosome axis controls meiotic events through a hierarchical assembly of HORMA domain proteins. Dev Cell. 2014;31 (4 ):487–502. doi:10.1016/j.devcel.2014.09.013.25446517
Kim  KP, Weiner  BM, Zhang  L, Jordan  A, Dekker  J, Kleckner  N. Sister cohesion and structural axis components mediate homolog bias of meiotic recombination. Cell. 2010;143 (6 ):924–937. doi:10.1016/j.cell.2010.11.015.21145459
Kim Guisbert  KS, Zhang  Y, Flatow  J, Hurtado  S, Staley  JP, Lin  S, Sontheimer  EJ. Meiosis-induced alterations in transcript architecture and noncoding RNA expression in S. cerevisiae. RNA. 2012;18 (6 ):1142–1153. doi:10.1261/rna.030510.111.22539527
King  GA, Goodman  JS, Schick  JG, Chetlapalli  K, Jorgens  DM, McDonald  KL, Ünal  E. Meiotic cellular rejuvenation is coupled to nuclear remodeling in budding yeast. eLife. 2019;8 :e47156. doi:10.7554/eLife.47156.
Kironmai  KM, Muniyappa  K, Friedman  DB, Hollingsworth  NM, Byers  B. DNA-binding activities of Hop1 protein, a synaptonemal complex component from Saccharomyces cerevisiae. Mol Cell Biol. 1998;18 (3 ):1424–1435. doi:10.1128/MCB.18.3.1424.9488458
Kitajima  TS, Kawashima  SA, Watanabe  Y. The conserved kinetochore protein shugoshin protects centromeric cohesion during meiosis. Nature. 2004;427 (6974 ):510–517. doi:10.1038/nature02312.14730319
Kitajima  TS, Sakuno  T, Ishiguro  K, Iemura  S, Natsume  T, Kawashima  SA, Watanabe  Y. Shugoshin collaborates with protein phosphatase 2A to protect cohesin. Nature. 2006;441 (7089 ):46–52. doi:10.1038/nature04663.16541025
Klapholz  S, Esposito  RE. Recombination and chromosome segregation during the single division meiosis in SPO12-1 and SPO13-1 diploids. Genetics. 1980;96 (3 ):589–611. doi:10.1093/genetics/96.3.589.7021312
Klapholz  S, Waddell  CS, Esposito  RE. The role of the SPO11 gene in meiotic recombination in yeast. Genetics. 1985;110 (2 ):187–216. doi:10.1093/genetics/110.2.187.3891509
Kleckner  N . Chiasma formation: chromatin/axis interplay and the role(s) of the synaptonemal complex. Chromosoma. 2006;115 (3 ):175–194. doi:10.1007/s00412-006-0055-7.16555016
Kleckner  N, Zickler  D, Jones  GH, Dekker  J, Padmore  R, Henle  J, Hutchinson  J. A mechanical basis for chromosome function. Proc Natl Acad Sci U S A. 2004;101 (34 ):12592–12597. doi:10.1073/pnas.0402724101.15299144
Klein  F, Laroche  T, Cardenas  ME, Hofmann  JF, Schweizer  D, Gasser  SM. Localization of RAP1 and topoisomerase II in nuclei and meiotic chromosomes of yeast. J Cell Biol. 1992;117 (5 ):935–948. doi:10.1083/jcb.117.5.935.1315786
Klein  F, Mahr  P, Galova  M, Buonomo  SBC, Michaelis  C, Nairz  K, Nasmyth  K. A central role for cohesins in sister chromatid cohesion, formation of axial elements and recombination during yeast meiosis. Cell. 1999;98 (1 ):91–103. doi:10.1016/S0092-8674(00)80609-1.10412984
Kosaka  H, Shinohara  M, Shinohara  A. Csm4-dependent telomere movement on nuclear envelope promotes meiotic recombination. PLoS Genet. 2008;4 (9 ):e1000196. doi:10.1371/journal.pgen.1000196.
Koszul  R, Kim  KP, Prentiss  M, Kleckner  N, Kameoka  S. Meiotic chromosomes move by linkage to dynamic actin cables with transduction of force through the nuclear envelope. Cell. 2008;133 (7 ):1188–1201. doi:10.1016/j.cell.2008.04.050.18585353
Koszul  R, Kleckner  N. Dynamic chromosome movements during meiosis: a way to eliminate unwanted connections?  Trends Cell Biol. 2009;19 (12 ):716–724. doi:10.1016/j.tcb.2009.09.007.19854056
Kshirsagar  R, Ghodke  I, Muniyappa  K. Saccharomyces cerevisiae Red1 protein exhibits nonhomologous DNA end-joining activity and potentiates Hop1-promoted pairing of double-stranded DNA. J Biol Chem. 2017;292 (33 ):13853–13866. doi:10.1074/jbc.M117.796425.28642366
Kugou  K, Fukuda  T, Yamada  S, Ito  M, Sasanuma  H, Mori  S, Katou  Y, Itoh  T, Matsumoto  K, Shibata  T, et al  Rec8 guides canonical Spo11 distribution along yeast meiotic chromosomes. Mol Biol Cell. 2009;20 (13 ):3064–3076. doi:10.1091/mbc.e08-12-1223.19439448
Kulkarni  DS, Owens  SN, Honda  M, Ito  M, Yang  Y, Corrigan  MW, Chen  L, Quan  AL, Hunter  N. PCNA activates the MutLγ endonuclease to promote meiotic crossing over. Nature. 2020;586 (7830 ):623–627. doi:10.1038/s41586-020-2645-6.32814343
Kunkel  TA, Erie  DA. DNA mismatch repair. Annu Rev Biochem. 2005;74 (1 ):681–710. doi:10.1146/annurev.biochem.74.082803.133243.15952900
Kurdzo  EL, Chuong  HH, Evatt  JM, Dawson  DS. A ZIP1 separation-of-function allele reveals that centromere pairing drives meiotic segregation of achiasmate chromosomes in budding yeast. PLoS Genet. 2018;14 (8 ):e1007513. doi:10.1371/journal.pgen.1007513.
Lacefield  S, Murray  AW. The spindle checkpoint rescues the meiotic segregation of chromosomes whose crossovers are far from the centromere. Nat Genet. 2007;39 (10 ):1273–1277. doi:10.1038/ng2120.17828265
Lambie  EJ, Roeder  GS. A yeast centromere acts in cis to inhibit meiotic gene conversion of adjacent sequences. Cell. 1988;52 (6 ):863–873. doi:10.1016/0092-8674(88)90428-X.3280137
Lan  W-H, Lin  S-Y, Kao  C-Y, Chang  W-H, Yeh  H-Y, Chang  H-Y, Chi  P, Li  H-W. Rad51 facilitates filament assembly of meiosis-specific Dmc1 recombinase. Proc Natl Acad Sci U S A. 2020;117 (21 ):11257–11264. doi:10.1073/pnas.1920368117.32404423
Lao  JP, Cloud  V, Huang  C-C, Grubb  J, Thacker  D, Lee  C-Y, Dresser  ME, Hunter  N, Bishop  DK. Meiotic crossover control by concerted action of Rad51-Dmc1 in homolog template bias and robust homeostatic regulation. PLoS Genet. 2013;9 (12 ):e1003978. doi:10.1371/journal.pgen.1003978.
Lao  JP, Oh  SD, Shinohara  M, Shinohara  A, Hunter  N. Rad52 promotes postinvasion steps of meiotic double-strand-break repair. Mol Cell. 2008;29 (4 ):517–524. doi:10.1016/j.molcel.2007.12.014.18313389
Laureau  R, Dyatel  A, Dursuk  G, Brown  S, Adeoye  H, Yue  J-X, De Chiara  M, Harris  A, Ünal  E, Liti  G, et al  Meiotic cells counteract programmed retrotransposon activation via RNA-binding translational repressor assemblies. Dev Cell. 2021;56 (1 ):22–35.7. doi:10.1016/j.devcel.2020.11.008.33278343
Lee  BH, Amon  A. Role of polo-like kinase CDC5 in programming meiosis I chromosome segregation. Science. 2003;300 (5618 ):482–486. doi:10.1126/science.1081846.12663816
Lee  C-Y, Conrad  MN, Dresser  ME. Meiotic chromosome pairing is promoted by telomere-led chromosome movements independent of bouquet formation. PLoS Genet. 2012;8 (5 ):e1002730. doi:10.1371/journal.pgen.1002730.
Lee  MS, Higashide  MT, Choi  H, Li  K, Hong  S, Lee  K, Shinohara  A, Shinohara  M, Kim  KP. The synaptonemal complex central region modulates crossover pathways and feedback control of meiotic double-strand break formation. Nucleic Acids Res. 2021;49 (13 ):7537–7553. doi:10.1093/nar/gkab566.34197600
Lee  BH, Kiburz  BM, Amon  A. Spo13 maintains centromeric cohesion and kinetochore coorientation during meiosis I. Curr Biol. 2004;14 (24 ):2168–2182. doi:10.1016/j.cub.2004.12.033.15620644
Lefrancois  P, Rockmill  B, Xie  P, Roeder  GS, Snyder  M. Multiple pairwise analysis of non-homologous centromere coupling reveals preferential chromosome size-dependent interactions and a role for bouquet formation in establishing the interaction pattern. PLoS Genet. 2016;12 (10 ):e1006347. doi:10.1371/journal.pgen.1006347.
Leu  J-Y, Chua  PR, Roeder  GS. The meiosis-specific Hop2 protein of S. cerevisiae ensures synapsis between homologous chromosomes. Cell. 1998;94 (3 ):375–386. doi:10.1016/S0092-8674(00)81480-4.9708739
Leu  JY, Roeder  GS. The pachytene checkpoint in S. cerevisiae depends on Swe1-mediated phosphorylation of the cyclin-dependent kinase Cdc28. Mol Cell. 1999;4 (5 ):805–814. doi:10.1016/s1097-2765(00)80390-1.10619027
Li  X, Heyer  WD. RAD54 controls access to the invading 3′-OH end after RAD51-mediated DNA strand invasion in homologous recombination in Saccharomyces cerevisiae. Nucleic Acids Res. 2009;37 (2 ):638–646. doi:10.1093/nar/gkn980.19074197
Li  J, Hooker  GW, Roeder  GS. Saccharomyces cerevisiae Mer2, Mei4 and Rec114 form a complex required for meiotic double-strand break formation. Genetics. 2006;173 (4 ):1969–1981. doi:10.1534/genetics.106.058768.16783010
Li  P, Jin  H, Yu  H-G. Condensin suppresses recombination and regulates double-strand break processing at the repetitive ribosomal DNA array to ensure proper chromosome segregation during meiosis in budding yeast. Mol Biol Cell. 2014;25 (19 ):2934–2947. doi:10.1091/mbc.e14-05-0957.25103240
Lichten  M, Borts  RH, Haber  JE. Meiotic gene conversion and crossing over between dispersed homologous sequences occurs frequently in Saccharomyces cerevisiae. Genetics. 1987;115 (2 ):233–246. doi:10.1093/genetics/115.2.233.3549449
Lilienthal  I, Kanno  T, Sjogren  C. Inhibition of the Smc5/6 complex during meiosis perturbs joint molecule formation and resolution without significantly changing crossover or non-crossover levels. PLoS Genet. 2013;9 (11 ):e1003898. doi:10.1371/journal.pgen.1003898.
Lindgren  A, Bungard  D, Pierce  M, Xie  J, Vershon  A, Winter  E. The pachytene checkpoint in Saccharomyces cerevisiae requires the Sum1 transcriptional repressor. EMBO J. 2000;19 (23 ):6489–6497. doi:10.1093/emboj/19.23.6489.11101521
Liu  J, Renault  L, Veaute  X, Fabre  F, Stahlberg  H, Heyer  W-D. Rad51 paralogues Rad55–Rad57 balance the antirecombinase Srs2 in Rad51 filament formation. Nature. 2011;479 (7372 ):245–248. doi:10.1038/nature10522.22020281
Liu  D, Vader  G, Vromans  MJ, Lampson  MA, Lens  SM. Sensing chromosome bi-orientation by spatial separation of aurora B kinase from kinetochore substrates. Science. 2009;323 (5919 ):1350–1353. doi:10.1126/science.1167000.19150808
Liu  J, Wu  TC, Lichten  M. The location and structure of double-strand DNA breaks induced during yeast meiosis: evidence for a covalently linked DNA-protein intermediate. EMBO J. 1995;14 (18 ):4599–4608. doi:10.1002/j.1460-2075.1995.tb00139.x.7556103
Lo  HC, Wan  L, Rosebrock  A, Futcher  B, Hollingsworth  NM. Cdc7-Dbf4 regulates NDT80 transcription as well as reductional segregation during budding yeast meiosis. Mol Biol Cell. 2008;19 (11 ):4956–4967. doi:10.1091/mbc.e08-07-0755.18768747
Loidl  J, Klein  F, Scherthan  H. Homologous pairing is reduced but not abolished in asynaptic mutants of yeast. J Cell Biol. 1994;125 (6 ):1191–1200. doi:10.1083/jcb.125.6.1191.8207053
Loidl  J, Nairz  K, Klein  F. Meiotic chromosome synapsis in a haploid yeast. Chromosoma. 1991;100 (4 ):221–228. doi:10.1007/BF00344155.2055133
Lui  DY, Peoples-Holst  TL, Mell  JC, Wu  H-Y, Dean  EW, Burgess  SM. Analysis of close stable homolog juxtaposition during meiosis in mutants of Saccharomyces cerevisiae. Genetics. 2006;173 (3 ):1207–1222. doi:10.1534/genetics.105.050658.16648640
Lydall  D, Nikolsky  Y, Bishop  DK, Weinert  T. A meiotic recombination checkpoint controlled by mitotic checkpoint genes. Nature. 1996;383 (6603 ):840–843. doi:10.1038/383840a0.8893012
MacQueen  AJ, Hochwagen  A. Checkpoint mechanisms: the puppet masters of meiotic prophase. Trends Cell Biol. 2011;21 (7 ):393–400. doi:10.1016/j.tcb.2011.03.004.21531561
MacQueen  AJ, Roeder  GS. Fpr3 and Zip3 ensure that initiation of meiotic recombination precedes chromosome synapsis in budding yeast. Curr Biol. 2009;19 (18 ):1519–1526. doi:10.1016/j.cub.2009.08.048.19765989
Maleki  S, Neale  MJ, Arora  C, Henderson  KA, Keeney  S. Interactions between Mei4, Rec114, and other proteins required for meiotic DNA double-strand break formation in Saccharomyces cerevisiae. Chromosoma. 2007;116 (5 ):471–486. doi:10.1007/s00412-007-0111-y.17558514
Malkova  A, Ross  L, Dawson  D, Hoekstra  MF, Haber  JE. Meiotic recombination initiated by a double-strand break in rad50 delta yeast cells otherwise unable to initiate meiotic recombination. Genetics. 1996;143 (2 ):741–754. doi:10.1093/genetics/143.2.741.8725223
Malone  RE, Bullard  S, Hermiston  M, Rieger  R, Cool  M, Galbraith  A. Isolation of mutants defective in early steps of meiotic recombination in the yeast Saccharomyces cerevisiae. Genetics. 1991;128 (1 ):79–88. doi:10.1093/genetics/128.1.79.2060778
Mancera  E, Bourgon  R, Brozzi  A, Huber  W, Steinmetz  LM. High-resolution mapping of meiotic crossovers and non-crossovers in yeast. Nature. 2008;454 (7203 ):479–485. doi:10.1038/nature07135.18615017
Mandel  S, Robzyk  K, Kassir  Y. IME1 gene encodes a transcription factor which is required to induce meiosis in Saccharomyces cerevisiae. Dev Genet. 1994;15 (2 ):139–147. doi:10.1002/dvg.1020150204.8205723
Mao-Draayer  Y, Galbraith  AM, Pittman  DL, Cool  M, Malone  RE. Analysis of meiotic recombination pathways in the yeast Saccharomyces cerevisiae. Genetics. 1996;144 (1 ):71–86. doi:10.1093/genetics/144.1.71.8878674
Marsolier-Kergoat  MC, Khan  MM, Schott  J, Zhu  X, Llorente  B. Mechanistic view and genetic control of DNA recombination during meiosis. Mol Cell. 2018;70 (1 ):9–20 .e6. doi:10.1016/j.molcel.2018.02.032.29625041
Marston  AL . Chromosome segregation in budding yeast: sister chromatid cohesion and related mechanisms. Genetics. 2014;196 (1 ):31–63. doi:10.1534/genetics.112.145144.24395824
Marston  AL, Lee  BH, Amon  A. The Cdc14 phosphatase and the FEAR network control meiotic spindle disassembly and chromosome segregation. Dev Cell. 2003;4 (5 ):711–726. doi:10.1016/S1534-5807(03)00130-8.12737806
Marston  AL, Tham  WH, Shah  H, Amon  A. A genome-wide screen identifies genes required for centromeric cohesion. Science. 2004;303 (5662 ):1367–1370. doi:10.1126/science.1094220.14752166
Martini  E, Diaz  RL, Hunter  N, Keeney  S. Crossover homeostasis in yeast meiosis. Cell. 2006;126 (2 ):285–295. doi:10.1016/j.cell.2006.05.044.16873061
Matos  J, Blanco  MG, Maslen  S, Skehel  JM, West  SC. Regulatory control of the resolution of DNA recombination intermediates during meiosis and mitosis. Cell. 2011;147 (1 ):158–172. doi:10.1016/j.cell.2011.08.032.21962513
Matos  J, Lipp  JJ, Bogdanova  A, Guillot  S, Okaz  E, Junqueira  M, Shevchenko  A, Zachariae  W. Dbf4-dependent CDC7 kinase links DNA replication to the segregation of homologous chromosomes in meiosis I. Cell. 2008;135 (4 ):662–678. doi:10.1016/j.cell.2008.10.026.19013276
McCord  R, Pierce  M, Xie  J, Wonkatal  S, Mickel  C, Vershon  AK. Rfm1, a novel tethering factor required to recruit the Hst1 histone deacetylase for repression of middle sporulation genes. Mol Cell Biol. 2003;23 (6 ):2009–2016. doi:10.1128/MCB.23.6.2009-2016.2003.12612074
McKee  AH, Kleckner  N. A general method for identifying recessive diploid-specific mutations in Saccharomyces cerevisiae, its application to the isolation of mutants blocked at intermediate stages of meiotic prophase and characterization of a new gene SAE2. Genetics. 1997a;146 (3 ):797–816. doi:10.1093/genetics/146.3.797.9215888
McKee  AH, Kleckner  N. Mutations in Saccharomyces cerevisiae that block meiotic prophase chromosome metabolism and confer cell cycle arrest at pachytene identify two new meiosis-specific genes SAE1 and SAE3. Genetics. 1997b;146 (3 ):817–834. doi:10.1093/genetics/146.3.817.9215889
McMahill  MS, Sham  CW, Bishop  DK. Synthesis-dependent strand annealing in meiosis. PLoS Biol. 2007;5 (11 ):e299. doi:10.1371/journal.pbio.0050299.17988174
Menees  TM, Roeder  GS. MEI4, a yeast gene required for meiotic recombination. Genetics. 1989;123 (4 ):675–682. doi:10.1093/genetics/123.4.675.2693205
Mengoli  V, Jonak  K, Lyzak  O, Lamb  M, Lister  LM, Lodge  C, Rojas  J, Zagoriy  I, Herbert  M, Zachariae  W. Deprotection of centromeric cohesin at meiosis II requires APC/C activity but not kinetochore tension. EMBO J. 2021;40 (7 ):e106812. doi:10.15252/embj.2020106812.
Meyer  RE, Kim  S, Obeso  D, Straight  PD, Winey  M, Dawson  DS. Mps1 and Ipl1/Aurora B act sequentially to correctly orient chromosomes on the meiotic spindle of budding yeast. Science. 2013;339 (6123 ):1071–1074. doi:10.1126/science.1232518.23371552
Meyer  RE, Tipton  AR, LaVictoire  R, Gorbsky  GJ, Dawson  DS. Mps1 promotes poleward chromosome movements in meiotic prometaphase. Mol Biol Cell. 2021;32 (10 ):1020–1032. doi:10.1091/mbc.E20-08-0525-T.33788584
Mimitou  EP, Yamada  S, Keeney  S. A global view of meiotic double-strand break end resection. Science. 2017;355 (6320 ):40–45. doi:10.1126/science.aak9704.28059759
Miyakawa  I, Aoi  H, Sando  N, Kuroiwa  T. Fluorescence microscopic studies of mitochondrial nucleoids during meiosis and sporulation in the yeast, Saccharomyces cerevisiae. J Cell Sci. 1984;66 (1 ):21–38. doi:10.1242/jcs.66.1.21.6378943
Moens  PB, Pearlman  RE. Chromatin organization at meiosis. Bioessays. 1988;9 (5 ):151–153. doi:10.1002/bies.950090503.3071365
Monje-Casas  F, Prabhu  VR, Lee  BH, Boselli  M, Amon  A. Kinetochore orientation during meiosis is controlled by Aurora B and the monopolin complex. Cell. 2007;128 (3 ):477–490. doi:10.1016/j.cell.2006.12.040.17289568
Mori  S, Shirahige  K. Perturbation of the activity of replication origin by meiosis-specific transcription. J Biol Chem. 2007;282 (7 ):4447–4452. doi:10.1074/jbc.M609671200.17170106
Mu  X, Murakami  H, Mohibullah  N, Keeney  S. Chromosome-autonomous feedback down-regulates meiotic DNA break competence upon synaptonemal complex formation. Genes Dev. 2020;34 (23-24 ):1605–1618. doi:10.1101/gad.342873.120.33184224
Muller  H, Scolari  VF, Agier  N, Piazza  A, Thierry  A, Mercy  G, Descorps-Declere  S, Lazar-Stefanita  L, Espeli  O, Llorente  B, et al  Characterizing meiotic chromosomes’ structure and pairing using a designer sequence optimized for Hi-C. Mol Syst Biol. 2018;14 (7 ):e8293. doi:10.15252/msb.20188293.30012718
Murakami  H, Keeney  S. Temporospatial coordination of meiotic DNA replication and recombination via DDK recruitment to replisomes. Cell. 2014;158 (4 ):861–873. doi:10.1016/j.cell.2014.06.028.25126790
Murakami  H, Lam  I, Huang  PC, Song  J, van Overbeek  M, Keeney  S. Multilayered mechanisms ensure that short chromosomes recombine in meiosis. Nature. 2020;582 (7810 ):124–128. doi:10.1038/s41586-020-2248-2.32494071
Nag  DK, Scherthan  H, Rockmill  B, Bhargava  J, Roeder  GS. Heteroduplex DNA formation and homolog pairing in yeast meiotic mutants. Genetics. 1995;141 (1 ):75–86. doi:10.1093/genetics/141.1.75.8536992
Nairz  K, Klein  F. mre11s–a yeast mutation that blocks double-strand-break processing and permits nonhomologous synapsis in meiosis. Genes Dev. 1997;11 (17 ):2272–2290. doi:10.1101/gad.11.17.2272.9303542
Nakagawa  T, Ogawa  H. The Saccharomyces cerevisiae MER3 gene, encoding a novel helicase-like protein, is required for crossover control in meiosis. EMBO J. 1999;18 (20 ):5714–5723. doi:10.1093/emboj/18.20.5714.10523314
Neale  MJ, Pan  J, Keeney  S. Endonucleolytic processing of covalent protein-linked DNA double-strand breaks. Nature. 2005;436 (7053 ):1053–1057. doi:10.1038/nature03872.16107854
Neiman  AM . Sporulation in the budding yeast Saccharomyces cerevisiae. Genetics. 2011;189 (3 ):737–765. doi:10.1534/genetics.111.127126.22084423
Nerusheva  OO, Galander  S, Fernius  J, Kelly  D, Marston  AL. Tension-dependent removal of pericentromeric shugoshin is an indicator of sister chromosome biorientation. Genes Dev. 2014;28 (12 ):1291–1309. doi:10.1101/gad.240291.114.24939933
Newnham  L, Jordan  PW, Carballo  JA, Newcombe  S, Hoffmann  E. Ipl1/Aurora kinase suppresses S-CDK-driven spindle formation during prophase I to ensure chromosome integrity during meiosis. PLoS One. 2013;8 (12 ):e83982. doi:10.1371/journal.pone.0083982.
Newnham  L, Jordan  P, Rockmill  B, Roeder  GS, Hoffmann  E. The synaptonemal complex protein Zip1 promotes the segregation of nonexchange chromosomes at meiosis I. Proc Natl Acad Sci U S A. 2010;107 (2 ):781–785. doi:10.1073/pnas.0913435107.20080752
Nicolas  A, Treco  D, Schultes  NP, Szostak  JW. An initiation site for meiotic gene conversion in the yeast Saccharomyces cerevisiae. Nature. 1989;338 (6210 ):35–39. doi:10.1038/338035a0.2537472
Nimonkar  AV, Dombrowski  CC, Siino  JS, Stasiak  AZ, Stasiak  A, Stasiak  A, Kowalczykowski  SC. Saccharomyces cerevisiae Dmc1 and Rad51 proteins preferentially function with Tid1 and Rad54 proteins, respectively, to promote DNA strand invasion during genetic recombination. J Biol Chem. 2012;287 (34 ):28727–28737. doi:10.1074/jbc.M112.373290.22761450
Niu  H, Li  X, Job  E, Park  C, Moazed  D, Gygi  SP, Hollingsworth  NM. Mek1 kinase is regulated to suppress double-strand break repair between sister chromatids during budding yeast meiosis. Mol Cell Biol. 2007;27 (15 ):5456–5467. doi:10.1128/MCB.00416-07.17526735
Niu  H, Wan  L, Baumgartner  B, Schaefer  D, Loidl  J, Hollingsworth  NM. Partner choice during meiosis is regulated by Hop1-promoted dimerization of Mek1. Mol Biol Cell. 2005;16 (12 ):5804–5818. doi:10.1091/mbc.e05-05-0465.16221890
Niu  H, Wan  L, Busygina  V, Kwon  Y, Allen  JA, Li  X, Kunz  RC, Kubota  K, Wang  B, Sung  P, et al  Regulation of meiotic recombination via Mek1-mediated Rad54 phosphorylation. Mol Cell. 2009;36 (3 ):393–404. doi:10.1016/j.molcel.2009.09.029.19917248
Novak  JE, Ross-Macdonald  PB, Roeder  GS. The budding yeast Msh4 protein functions in chromosome synapsis and the regulation of crossover distribution. Genetics. 2001;158 (3 ):1013–1025. doi:10.1093/genetics/158.3.1013.11454751
Obeso  D, Dawson  DS. Temporal characterization of homology-independent centromere coupling in meiotic prophase. PLoS One. 2010;5 (4 ):e10336. doi:10.1371/journal.pone.0010336.
Oelschlaegel  T, Schwickart  M, Matos  J, Bogdanova  A, Camasses  A, Havlis  J, Shevchenko  A, Zachariae  W. The yeast APC/C subunit Mnd2 prevents premature sister chromatid separation triggered by the meiosis-specific APC/C-Ama1. Cell. 2005;120 (6 ):773–788. doi:10.1016/j.cell.2005.01.032.15797379
Oh  J, Al-Zain  A, Cannavo  E, Cejka  P, Symington  LS. Xrs2 dependent and independent functions of the Mre11-Rad50 complex. Mol Cell. 2016;64 (2 ):405–415. doi:10.1016/j.molcel.2016.09.011.27746018
Oh  SD, Lao  JP, Hwang  PY-H, Taylor  AF, Smith  GR, Hunter  N. BLM ortholog, Sgs1, prevents aberrant crossing-over by suppressing formation of multichromatid joint molecules. Cell. 2007;130 (2 ):259–272. doi:10.1016/j.cell.2007.05.035.17662941
Oh  SD, Lao  JP, Taylor  AF, Smith  GR, Hunter  N. RecQ helicase, Sgs1, and XPF family endonuclease, Mus81-Mms4, resolve aberrant joint molecules during meiotic recombination. Mol Cell. 2008;31 (3 ):324–336. doi:10.1016/j.molcel.2008.07.006.18691965
Okaz  E, Arguello-Miranda  O, Bogdanova  A, Vinod  PK, Lipp  JJ, Markova  Z, Zagoriy  I, Novak  B, Zachariae  W. Meiotic prophase requires proteolysis of M phase regulators mediated by the meiosis-specific APC/CAma1. Cell. 2012;151 (3 ):603–618. doi:10.1016/j.cell.2012.08.044.23101628
Oke  A, Anderson  CM, Yam  P, Fung  JC. Controlling meiotic recombinational repair—specifying the roles of ZMMs, Sgs1 and Mus81/Mms4 in crossover formation. PLoS Genet. 2014;10 (10 ):e1004690 . doi:10.1371/journal.pgen.1004690.
Padmore  R, Cao  L, Kleckner  N. Temporal comparison of recombination and synaptonemal complex formation during meiosis in S. cerevisiae. Cell. 1991;66 (6 ):1239–1256. doi:10.1016/0092-8674(91)90046-2.1913808
Page  SL, Hawley  RS. The genetics and molecular biology of the synaptonemal complex. Annu Rev Cell Dev Biol. 2004;20 (1 ):525–558. doi:10.1146/annurev.cellbio.19.111301.155141.15473851
Pak  J, Segall  J. Role of Ndt80, Sum1, and Swe1 as targets of the meiotic recombination checkpoint that control exit from pachytene and spore formation in Saccharomyces cerevisiae. Mol Cell Biol. 2002;22 (18 ):6430–6440. doi:10.1128/MCB.22.18.6430-6440.2002.12192042
Pan  J, Sasaki  M, Kniewel  R, Murakami  H, Blitzblau  HG, Tischfield  SE, Zhu  X, Neale  MJ, Jasin  M, Socci  ND, et al  A hierarchical combination of factors shapes the genome-wide topography of yeast meiotic recombination initiation. Cell. 2011;144 (5 ):719–731. doi:10.1016/j.cell.2011.02.009.21376234
Panizza  S, Mendoza  MA, Berlinger  M, Huang  L, Nicolas  A, Shirahige  K, Klein  F. Spo11-accessory proteins link double-strand break sites to the chromosome axis in early meiotic recombination. Cell. 2011;146 (3 ):372–383. doi:10.1016/j.cell.2011.07.003.21816273
Pazhayam  NM, Turcotte  CA, Sekelsky  J. Meiotic crossover patterning. Front Cell Dev Biol. 2021;9 :681123. doi:10.3389/fcell.2021.681123.
Penkner  AM, Prinz  S, Ferscha  S, Klein  F. Mnd2, an essential antagonist of the anaphase-promoting complex during meiotic prophase. Cell. 2005;120 (6 ):789–801. doi:10.1016/j.cell.2005.01.017.15797380
Peoples-Holst  TL, Burgess  SM. Multiple branches of the meiotic recombination pathway contribute independently to homolog pairing and stable juxtaposition during meiosis in budding yeast. Genes Dev. 2005;19 (7 ):863–874. doi:10.1101/gad.1293605.15805472
Peoples  TL, Dean  E, Gonzalez  O, Lambourne  L, Burgess  SM. Close, stable homolog juxtaposition during meiosis in budding yeast is dependent on meiotic recombination, occurs independently of synapsis, and is distinct from DSB-independent pairing contacts. Genes Dev. 2002;16 (13 ):1682–1695. doi:10.1101/gad.983802.12101126
Perry  J, Kleckner  N, Börner  GV. Bioinformatic analyses implicate the collaborating meiotic crossover/chiasma proteins Zip2, Zip3, and Spo22/Zip4 in ubiquitin labeling. Proc Natl Acad Sci U S A. 2005;102 (49 ):17594–17599. doi:10.1073/pnas.0508581102.16314568
Petela  NJ, Gligoris  TG, Metson  J, Lee  B-G, Voulgaris  M, Hu  B, Kikuchi  S, Chapard  C, Chen  W, Rajendra  E, et al  Scc2 is a potent activator of Cohesin’s ATPase that promotes loading by binding Scc1 without Pds5. Mol Cell. 2018;70 (6 ):1134–1148.e7. doi:10.1016/j.molcel.2018.05.022.29932904
Petronczki  M, Chwalla  B, Siomos  MF, Yokobayashi  S, Helmhart  W, Deutschbauer  AM, Davis  RW, Watanabe  Y, Nasmyth  K. Sister-chromatid cohesion mediated by the alternative RF-CCtf18/Dcc1/Ctf8, the helicase Chl1 and the polymerase-alpha-associated protein Ctf4 is essential for chromatid disjunction during meiosis II. J Cell Sci. 2004;117 (16 ):3547–3559. doi:10.1242/jcs.01231.15226378
Petronczki  M, Matos  J, Mori  S, Gregan  J, Bogdanova  A, Schwickart  M, Mechtler  K, Shirahige  K, Zachariae  W, Nasmyth  K. Monopolar attachment of sister kinetochores at meiosis I requires casein kinase 1. Cell. 2006;126 (6 ):1049–1064. doi:10.1016/j.cell.2006.07.029.16990132
Pfiz  S, Zimmermann  J, Hilt  W. The yeast kinetochore protein Slk19 is required to prevent aberrant chromosome segregation in meiosis and mitosis. Genes Cells. 2002;7 (10 ):1033–1042. doi:10.1046/j.1365-2443.2002.00583.x.12354097
Phizicky  DV, Berchowitz  LE, Bell  SP. Multiple kinases inhibit origin licensing and helicase activation to ensure reductive cell division during meiosis. eLife. 2018;7 :e33309. doi:10.7554/eLife.33309.
Pierce  M, Benjamin  KR, Montano  SP, Georgiadis  MM, Winter  E, Vershon  AK. Sum1 and Ndt80 proteins compete for binding to middle sporulation element sequences that control meiotic gene expression. Mol Cell Biol. 2003;23 (14 ):4814–4825. doi:10.1128/MCB.23.14.4814-4825.2003.12832469
Plate  I, Hallwyl  SC, Shi  I, Krejci  L, Müller  C, Albertsen  L, Sung  P, Mortensen  UH. Interaction with RPA is necessary for Rad52 repair center formation and for its mediator activity. J Biol Chem. 2008;283 (43 ):29077–29085. doi:10.1074/jbc.M804881200.18703507
Prajapati  HK, Agarwal  M, Mittal  P, Ghosh  SK. Evidence of Zip1 promoting sister kinetochore mono-orientation during meiosis in budding yeast. G3 (Bethesda). 2018;8 (11 ):3691–3701. doi:10.1534/g3.118.200469.30254179
Previato de Almeida  L, Evatt  JM, Chuong  HH, Kurdzo  EL, Eyster  CA, Gladstone  MN, Gómez-H  L, Llano  E, Meyer  R, Pendas  AM, et al  Shugoshin protects centromere pairing and promotes segregation of nonexchange partner chromosomes in meiosis. Proc Natl Acad Sci U S A. 2019;116 (19 ):9417–9422. doi:10.1073/pnas.1902526116.31019073
Prieler  S, Chen  D, Huang  L, Mayrhofer  E, Zsoter  S, Vesely  M, Mbogning  J, Klein  F. Spo11 generates gaps through concerted cuts at sites of topological stress. Nature. 2021;594 (7864 ):577–582. doi:10.1038/s41586-021-03632-x.34108684
Primig  M, Williams  RM, Winzeler  EA, Tevzadze  GG, Conway  AR, Hwang  SY, Davis  RW, Esposito  RE. The core meiotic transcriptome in budding yeasts. Nat Genet. 2000;26 (4 ):415–423. doi:10.1038/82539.11101837
Prinz  S, Amon  A, Klein  F. Isolation of COM1, a new gene required to complete meiotic double-strand break-induced recombination in Saccharomyces cerevisiae. Genetics. 1997;146 (3 ):781–795. doi:10.1093/genetics/146.3.781.9215887
Prugar  E, Burnett  C, Chen  X, Hollingsworth  NM. Coordination of double strand break repair and meiotic progression in yeast by a Mek1-Ndt80 negative feedback loop. Genetics. 2017;206 (1 ):497–512. doi:10.1534/genetics.117.199703.28249986
Pyatnitskaya  A, Andreani  J, Guerois  R, De Muyt  A, Borde  V. The Zip4 protein directly couples meiotic crossover formation to synaptonemal complex assembly. Genes Dev. 2022;36 (1-2 ):53–69. doi:10.1101/gad.348973.121.34969823
Rabitsch  KP, Petronczki  M, Javerzat  J-P, Genier  S, Chwalla  B, Schleiffer  A, Tanaka  TU, Nasmyth  K. Kinetochore recruitment of two nucleolar proteins is required for homolog segregation in meiosis I. Dev Cell. 2003;4 (4 ):535–548. doi:10.1016/S1534-5807(03)00086-8.12689592
Raina  VB, Schoot Uiterkamp  M, Vader  G. Checkpoint control in meiotic prophase: idiosyncratic demands require unique characteristics. Curr Top Dev Biol. 2023;151 :281–315. doi:10.1016/bs.ctdb.2022.04.007.36681474
Ramesh  MA, Malik  S-B, Logsdon  JM  Jr. A phylogenomic inventory of meiotic genes; evidence for sex in Giardia and an early eukaryotic origin of meiosis. Curr Biol. 2005;15 (2 ):185–191. doi:10.1016/j.cub.2005.01.003.15668177
Ranjha  L, Anand  R, Cejka  P. The Saccharomyces cerevisiae Mlh1–Mlh3 heterodimer is an endonuclease that preferentially binds to Holliday junctions. J Biol Chem. 2014;289 (9 ):5674–5686. doi:10.1074/jbc.M113.533810.24443562
Rao  HB, Shinohara  M, Shinohara  A. Mps3 SUN domain is important for chromosome motion and juxtaposition of homologous chromosomes during meiosis. Genes Cells. 2011;16 (11 ):1081–1096. doi:10.1111/j.1365-2443.2011.01554.x.22017544
Refolio  E, Cavero  S, Marcon  E, Freire  R, San-Segundo  PA. The Ddc2/ATRIP checkpoint protein monitors meiotic recombination intermediates. J Cell Sci. 2011;124 (14 ):2488–2500. doi:10.1242/jcs.081711.21693576
Reitz  D, Chan  Y-L, Bishop  DK. How strand exchange protein function benefits from ATP hydrolysis. Curr Opin Genet Dev. 2021;71 :120–128. doi:10.1016/j.gde.2021.06.016.34343922
Rice  LM, Plakas  C, Nickels  JT  Jr. Loss of meiotic rereplication block in Saccharomyces cerevisiae cells defective in Cdc28p regulation. Eukaryot Cell. 2005;4 (1 ):55–62. doi:10.1128/EC.4.1.55-62.2005.15643060
Riedel  CG, Katis  VL, Katou  Y, Mori  S, Itoh  T, Helmhart  W, Gálová  M, Petronczki  M, Gregan  J, Cetin  B, et al  Protein phosphatase 2A protects centromeric sister chromatid cohesion during meiosis I. Nature. 2006;441 (7089 ):53–61. doi:10.1038/nature04664.16541024
Robert  T, Nore  A, Brun  C, Maffre  C, Crimi  B, Guichard  V, Bourbon  H-M, de Massy  B. The TopoVIB-like protein family is required for meiotic DNA double-strand break formation. Science. 2016;351 (6276 ):943–949. doi:10.1126/science.aad5309.26917764
Rockmill  B, Engebrecht  JA, Scherthan  H, Loidl  J, Roeder  GS. The yeast MER2 gene is required for chromosome synapsis and the initiation of meiotic recombination. Genetics. 1995;141 (1 ):49–59. doi:10.1093/genetics/141.1.49.8536989
Rockmill  B, Lefrancois  P, Voelkel-Meiman  K, Oke  A, Roeder  GS, Fung  JC. High throughput sequencing reveals alterations in the recombination signatures with diminishing Spo11 activity. PLoS Genet. 2013;9 (10 ):e1003932. doi:10.1371/journal.pgen.1003932.
Rockmill  B, Roeder  GS. Meiosis in asynaptic yeast. Genetics. 1990;126 (3 ):563–574. doi:10.1093/genetics/126.3.563.2249756
Rockmill  B, Roeder  GS. The yeast med1 mutant undergoes both meiotic homolog nondisjunction and precocious separation of sister chromatids. Genetics. 1994;136 (1 ):65–74. doi:10.1093/genetics/136.1.65.8138177
Rockmill  B, Sym  M, Scherthan  H, Roeder  GS. Roles for two RecA homologs in promoting meiotic chromosome synapsis. Genes Dev. 1995;9 (21 ):2684–2695. doi:10.1101/gad.9.21.2684.7590245
Rog  O, Kohler  S, Dernburg  AF. The synaptonemal complex has liquid crystalline properties and spatially regulates meiotic recombination factors. eLife. 2017;6 :e21455. doi:10.7554/eLife.21455.
Ross-Macdonald  P, Roeder  GS. Mutation of a meiosis-specific MutS homolog decreases crossing over but not mismatch correction. Cell. 1994;79 (6 ):1069–1080. doi:10.1016/0092-8674(94)90037-X.8001134
Ross  LO, Maxfield  R, Dawson  D. Exchanges are not equally able to enhance meiotic chromosome segregation in yeast. Proc Natl Acad Sci U S A. 1996;93 (10 ):4979–4983. doi:10.1073/pnas.93.10.4979.8643515
Rousova  D, Nivsarkar  V, Altmannova  V, Raina  VB, Funk  SK, Liedtke  D, Janning  P, Müller  F, Reichle  H, Vader  G, et al  Novel mechanistic insights into the role of Mer2 as the keystone of meiotic DNA break formation. eLife. 2021;10 :e72330. doi:10.7554/eLife.72330.34951404
Rubin-Bejerano  I, Mandel  S, Robzyk  K, Kassir  Y. Induction of meiosis in Saccharomyces cerevisiae depends on conversion of the transcriptional represssor Ume6 to a positive regulator by its regulated association with the transcriptional activator Ime1. Mol Cell Biol. 1996;16 (5 ):2518–2526. doi:10.1128/MCB.16.5.2518.8628320
Salah  SM, Nasmyth  K. Destruction of the securin Pds1p occurs at the onset of anaphase during both meiotic divisions in yeast. Chromosoma. 2000;109 (1-2 ):27–34. doi:10.1007/s004120050409.10855492
Salem  L, Walter  N, Malone  R. Suppressor analysis of the Saccharomyces cerevisiae gene REC104 reveals a genetic interaction with REC102. Genetics. 1999;151 (4 ):1261–1272. doi:10.1093/genetics/151.4.1261.10101155
San-Segundo  PA, Roeder  GS. Pch2 links chromatin silencing to meiotic checkpoint control. Cell. 1999;97 (3 ):313–324. doi:10.1016/S0092-8674(00)80741-2.10319812
Sanchez  A, Adam  C, Rauh  F, Duroc  Y, Ranjha  L, Lombard  B, Mu  X, Wintrebert  M, Loew  D, Guarné  A, et al  Exo1 recruits Cdc5 polo kinase to MutLγ to ensure efficient meiotic crossover formation. Proc Natl Acad Sci U S A. 2020;117 (48 ):30577–30588. doi:10.1073/pnas.2013012117.33199619
Sandhu  R, Monge Neria  F, Monge Neria  J, Chen  X, Hollingsworth  NM, Börner  GV. DNA helicase Mph1(FANCM) ensures meiotic recombination between parental chromosomes by dissociating precocious displacement loops. Dev Cell. 2020;53 (4 ):458–472 .e5. doi:10.1016/j.devcel.2020.04.010.32386601
Sarangapani  KK, Duro  E, Deng  Y, Alves Fde  L, Ye  Q, Opoku  KN, Ceto  S, Rappsilber  J, Corbett  KD, Biggins  S, et al  Sister kinetochores are mechanically fused during meiosis I in yeast. Science. 2014;346 (6206 ):248–251. doi:10.1126/science.1256729.25213378
Sasanuma  H, Hirota  K, Fukuda  T, Kakusho  N, Kugou  K, Kawasaki  Y, Shibata  T, Masai  H, Ohta  K. Cdc7-dependent phosphorylation of Mer2 facilitates initiation of yeast meiotic recombination. Genes Dev. 2008;22 (3 ):398–410. doi:10.1101/gad.1626608.18245451
Sasanuma  H, Tawaramoto  MS, Lao  JP, Hosaka  H, Sanda  E, Suzuki  M, Yamashita  E, Hunter  N, Shinohara  M, Nakagawa  A, et al  A new protein complex promoting the assembly of Rad51 filaments. Nat Commun. 2013;4 (1 ):1676. doi:10.1038/ncomms2678.23575680
Sawarynski  KE, Najor  NA, Kepsel  AC, Brush  GS. Sic1-induced DNA rereplication during meiosis. Proc Natl Acad Sci U S A. 2009;106 (1 ):232–237. doi:10.1073/pnas.0809731105.19116279
Sawyer  EM, Joshi  PR, Jorgensen  V, Yunus  J, Berchowitz  LE, Ünal  E. Developmental regulation of an organelle tether coordinates mitochondrial remodeling in meiosis. J Cell Biol. 2019;218 (2 ):559–579. doi:10.1083/jcb.201807097.30538140
Schalbetter  SA, Fudenberg  G, Baxter  J, Pollard  KS, Neale  MJ. Principles of meiotic chromosome assembly revealed in S. cerevisiae. Nat Commun. 2019;10 (1 ):4795. doi:10.1038/s41467-019-12629-0.31641121
Scherthan  H, Bahler  J, Kohli  J. Dynamics of chromosome organization and pairing during meiotic prophase in fission yeast. J Cell Biol. 1994;127 (2 ):273–285. doi:10.1083/jcb.127.2.273.7929575
Scherthan  H, Wang  H, Adelfalk  C, White  EJ, Cowan  C, Cande  WZ, Kaback  DB. Chromosome mobility during meiotic prophase in Saccharomyces cerevisiae. Proc Natl Acad Sci U S A. 2007;104 (43 ):16934–16939. doi:10.1073/pnas.0704860104.17939997
Schindler  K, Winter  E. Phosphorylation of Ime2 regulates meiotic progression in Saccharomyces cerevisiae. J Biol Chem. 2006;281 (27 ):18307–18316. doi:10.1074/jbc.M602349200.16684773
Schwacha  A, Kleckner  N. Identification of double Holliday junctions as intermediates in meiotic recombination. Cell. 1995;83 (5 ):783–791. doi:10.1016/0092-8674(95)90191-4.8521495
Schwacha  A, Kleckner  N. Interhomolog bias during meiotic recombination: meiotic functions promote a highly differentiated interhomolog-only pathway. Cell. 1997;90 (6 ):1123–1135. doi:10.1016/S0092-8674(00)80378-5.9323140
Schwartz  S, Agarwala  SD, Mumbach  MR, Jovanovic  M, Mertins  P, Shishkin  A, Tabach  Y, Mikkelsen  TS, Satija  R, Ruvkun  G, et al  High-resolution mapping reveals a conserved, widespread, dynamic mRNA methylation program in yeast meiosis. Cell. 2013;155 (6 ):1409–1421. doi:10.1016/j.cell.2013.10.047.24269006
Serrentino  ME, Chaplais  E, Sommermeyer  V, Borde  V. Differential association of the conserved SUMO ligase Zip3 with meiotic double-strand break sites reveals regional variations in the outcome of meiotic recombination. PLoS Genet. 2013;9 (4 ):e1003416. doi:10.1371/journal.pgen.1003416.
Shah  JC, Clancy  MJ. IME4, a gene that mediates MAT and nutritional control of meiosis in Saccharomyces cerevisiae. Mol Cell Biol. 1992;12 (3 ):1078–1086. doi:10.1128/mcb.12.3.1078-1086.1992.1545790
Shah  SS, Hartono  S, Piazza  A, Som  V, Wright  W, Chédin  F, Heyer  W-D. Rdh54/Tid1 inhibits Rad51-Rad54-mediated D-loop formation and limits D-loop length. eLife. 2020;9 :e59112. doi:10.7554/eLife.59112.
Shah  PP, Zheng  X, Epshtein  A, Carey  JN, Bishop  DK, Klein  HL. Swi2/Snf2-related translocases prevent accumulation of toxic Rad51 complexes during mitotic growth. Mol Cell. 2010;39 (6 ):862–872. doi:10.1016/j.molcel.2010.08.028.20864034
Sharon  G, Simchen  G. Mixed segregation of chromosomes during single-division meiosis of Saccharomyces cerevisiae. Genetics. 1990;125 (3 ):475–485. doi:10.1093/genetics/125.3.475.2199318
Shin  ME, Skokotas  A, Winter  E. The Cdk1 and Ime2 protein kinases trigger exit from meiotic prophase in Saccharomyces cerevisiae by inhibiting the Sum1 transcriptional repressor. Mol Cell Biol. 2010;30 (12 ):2996–3003. doi:10.1128/MCB.01682-09.20385771
Shinohara  M, Gasior  SL, Bishop  DK, Shinohara  A. Tid1/Rdh54 promotes colocalization of Rad51 and Dmc1 during meiotic recombination. Proc Natl Acad Sci U S A. 2000;97 (20 ):10814–10819. doi:10.1073/pnas.97.20.10814.11005857
Shinohara  A, Ogawa  H, Ogawa  T. Rad51 protein involved in repair and recombination in S. cerevisiae is a RecA-like protein. Cell. 1992;69 (3 ):457–470. doi:10.1016/0092-8674(92)90447-K.1581961
Shinohara  M, Oh  SD, Hunter  N, Shinohara  A. Crossover assurance and crossover interference are distinctly regulated by the ZMM proteins during yeast meiosis. Nat Genet. 2008;40 (3 ):299–309. doi:10.1038/ng.83.18297071
Shinohara  M, Sakai  K, Shinohara  A, Bishop  DK. Crossover interference in Saccharomyces cerevisiae requires a TID1/RDH54- and DMC1-dependent pathway. Genetics. 2003;163 (4 ):1273–1286. doi:10.1093/genetics/163.4.1273.12702674
Shinohara  A, Shinohara  M, Ohta  T, Matsuda  S, Ogawa  T. Rad52 forms ring structures and co-operates with RPA in single-strand DNA annealing. Genes Cells. 1998;3 (3 ):145–156. doi:10.1046/j.1365-2443.1998.00176.x.9619627
Shinohara  M, Shita-Yamaguchi  E, Buerstedde  JM, Shinagawa  H, Ogawa  H, Shinohara  A. Characterization of the roles of the Saccharomyces cerevisiae RAD54 gene and a homologue of RAD54, RDH54/TID1, in mitosis and meiosis. Genetics. 1997;147 (4 ):1545–1556. doi:10.1093/genetics/147.4.1545.9409820
Shirk  K, Jin  H, Giddings  TH  Jr, Winey  M, Yu  H-G. The Aurora kinase Ipl1 is necessary for spindle pole body cohesion during budding yeast meiosis. J Cell Sci. 2011;124 (17 ):2891–2896. doi:10.1242/jcs.086652.21878496
Shonn  MA, McCarroll  R, Murray  AW. Requirement of the spindle checkpoint for proper chromosome segregation in budding yeast meiosis. Science. 2000;289 (5477 ):300–303. doi:10.1126/science.289.5477.300.10894778
Shonn  MA, McCarroll  R, Murray  AW. Spo13 protects meiotic cohesin at centromeres in meiosis I. Genes Dev. 2002;16 (13 ):1659–1671. doi:10.1101/gad.975802.12101124
Shonn  MA, Murray  AL, Murray  AW. Spindle checkpoint component Mad2 contributes to biorientation of homologous chromosomes. Curr Biol. 2003;13 (22 ):1979–1984. doi:10.1016/j.cub.2003.10.057.14614824
Shuster  EO, Byers  B. Pachytene arrest and other meiotic effects of the start mutations in Saccharomyces cerevisiae. Genetics. 1989;123 (1 ):29–43. doi:10.1093/genetics/123.1.29.2680756
Simchen  G, Kassir  Y. Genetic regulation of differentiation towards meiosis in the yeast Saccharomyces cerevisiae. Genome. 1989;31 (1 ):95–99. doi:10.1139/g89-018.2687111
Smith  KN, Penkner  A, Ohta  K, Klein  F, Nicolas  A. B-type cyclins CLB5 and CLB6 control the initiation of recombination and synaptonemal complex formation in yeast meiosis. Curr Biol. 2001;11 (2 ):88–97. doi:10.1016/S0960-9822(01)00026-4.11231124
Smith  AV, Roeder  GS. The yeast Red1 protein localizes to the cores of meiotic chromosomes. J Cell Biol. 1997;136 (5 ):957–967. doi:10.1083/jcb.136.5.957.9060462
Snowden  T, Acharya  S, Butz  C, Berardini  M, Fishel  R. hMSH4-hMSH5 recognizes Holliday Junctions and forms a meiosis-specific sliding clamp that embraces homologous chromosomes. Mol Cell. 2004;15 (3 ):437–451. doi:10.1016/j.molcel.2004.06.040.15304223
Sollier  J, Lin  W, Soustelle  C, Suhre  K, Nicolas  A, Géli  V, de La Roche Saint-André  C. Set1 is required for meiotic S-phase onset, double-strand break formation and middle gene expression. EMBO J. 2004;23 (9 ):1957–1967. doi:10.1038/sj.emboj.7600204.15071505
Sommermeyer  V, Beneut  C, Chaplais  E, Serrentino  ME, Borde  V. Spp1, a member of the Set1 complex, promotes meiotic DSB formation in promoters by tethering histone H3K4 methylation sites to chromosome axes. Mol Cell. 2013;49 (1 ):43–54. doi:10.1016/j.molcel.2012.11.008.23246437
Song  M, Zhai  B, Yang  X, Tan  T, Wang  Y, Yang  X, Tan  Y, Chu  T, Cao  Y, Song  Y, et al  Interplay between Pds5 and Rec8 in regulating chromosome axis length and crossover frequency. Sci Adv. 2021;7 (11 ):eabe7920. doi:10.1126/sciadv.abe7920.
Sopko  R, Raithatha  S, Stuart  D. Phosphorylation and maximal activity of Saccharomyces cerevisiae meiosis-specific transcription factor Ndt80 is dependent on Ime2. Mol Cell Biol. 2002;22 (20 ):7024–7040. doi:10.1128/MCB.22.20.7024-7040.2002.12242283
Sopko  R, Stuart  DT. Purification and characterization of the DNA binding domain of Saccharomyces cerevisiae meiosis-specific transcription factor Ndt80. Protein Expr Purif. 2004;33 (1 ):134–144. doi:10.1016/j.pep.2003.08.025.14680970
Sourirajan  A, Lichten  M. Polo-like kinase Cdc5 drives exit from pachytene during budding yeast meiosis. Genes Dev. 2008;22 (19 ):2627–2632. doi:10.1101/gad.1711408.18832066
Steinfeld  JB, Belan  O, Kwon  Y, Terakawa  T, Al-Zain  A, Smith  MJ, Crickard  JB, Qi  Z, Zhao  W, Rothstein  R, et al  Defining the influence of Rad51 and Dmc1 lineage-specific amino acids on genetic recombination. Genes Dev. 2019;33 (17-18 ):1191–1207. doi:10.1101/gad.328062.119.31371435
Strich  R, Mallory  MJ, Jarnik  M, Cooper  KF. Cyclin B-Cdk activity stimulates meiotic rereplication in budding yeast. Genetics. 2004;167 (4 ):1621–1628. doi:10.1534/genetics.104.029223.15342503
Stuart  D, Wittenberg  C. CLB5 and CLB6 are required for premeiotic DNA replication and activation of the meiotic S/M checkpoint. Genes Dev. 1998;12 (17 ):2698–2710. doi:10.1101/gad.12.17.2698.9732268
Sturtevant  AH . A third group of linked genes in Drosophila ampelophila. Science. 1913;37 (965 ):990–992. doi:10.1126/science.37.965.990.17833164
Subramanian  VV, Hochwagen  A. The meiotic checkpoint network: step-by-step through meiotic prophase. Cold Spring Harb Perspect Biol. 2014;6 (10 ):a016675. doi:10.1101/cshperspect.a016675.
Subramanian  VV, MacQueen  AJ, Vader  G, Shinohara  M, Sanchez  A, Borde  V, Shinohara  A, Hochwagen  A. Chromosome synapsis alleviates Mek1-dependent suppression of meiotic DNA repair. PLoS Biol. 2016;14 (2 ):e1002369. doi:10.1371/journal.pbio.1002369.
Subramanian  VV, Zhu  X, Markowitz  TE, Vale-Silva  LA, San-Segundo  PA, Hollingsworth  NM, Keeney  S, Hochwagen  A. Persistent DNA-break potential near telomeres increases initiation of meiotic recombination on short chromosomes. Nat Commun. 2019;10 (1 ):970. doi:10.1038/s41467-019-08875-x.30814509
Suda  Y, Nakanishi  H, Mathieson  EM, Neiman  AM. Alternative modes of organellar segregation during sporulation in Saccharomyces cerevisiae. Eukaryot Cell. 2007;6 (11 ):2009–2017. doi:10.1128/EC.00238-07.17905927
Sullivan  M, Holt  L, Morgan  DO. Cyclin-specific control of ribosomal DNA segregation. Mol Cell Biol. 2008;28 (17 ):5328–5336. doi:10.1128/MCB.00235-08.18591250
Sullivan  M, Morgan  DO. A novel destruction sequence targets the meiotic regulator Spo13 for anaphase-promoting complex-dependent degradation in anaphase I. J Biol Chem. 2007;282 (27 ):19710–19715. doi:10.1074/jbc.M701507200.17493939
Sun  X, Huang  L, Markowitz  TE, Blitzblau  HG, Chen  D, Klein  F, Hochwagen  A. Transcription dynamically patterns the meiotic chromosome-axis interface. eLife. 2015;4 :e07424. doi:10.7554/eLife.07424.
Sym  M, Engebrecht  JA, Roeder  GS. ZIP1 is a synaptonemal complex protein required for meiotic chromosome synapsis. Cell. 1993;72 (3 ):365–378. doi:10.1016/0092-8674(93)90114-6.7916652
Sym  M, Roeder  GS. Crossover interference is abolished in the absence of a synaptonemal complex protein. Cell. 1994;79 (2 ):283–292. doi:10.1016/0092-8674(94)90197-X.7954796
Sym  M, Roeder  GS. Zip1-induced changes in synaptonemal complex structure and polycomplex assembly. J Cell Biol. 1995;128 (4 ):455–466. doi:10.1083/jcb.128.4.455.7860625
Symington  LS, Rothstein  R, Lisby  M. Mechanisms and regulation of mitotic recombination in Saccharomyces cerevisiae. Genetics. 2014;198 (3 ):795–835. doi:10.1534/genetics.114.166140.25381364
Szostak  JW, Orr-Weaver  TL, Rothstein  RJ, Stahl  FW. The double-strand-break repair model for recombination. Cell. 1983;33 (1 ):25–35. doi:10.1016/0092-8674(83)90331-8.6380756
Tang  Z, Shu  H, Qi  W, Mahmood  NA, Mumby  MC, Yu  H. PP2A is required for centromeric localization of Sgo1 and proper chromosome segregation. Dev Cell. 2006;10 (5 ):575–585. doi:10.1016/j.devcel.2006.03.010.16580887
Tang  S, Wu  MKY, Zhang  R, Hunter  N. Pervasive and essential roles of the Top3-Rmi1 decatenase orchestrate recombination and facilitate chromosome segregation in meiosis. Mol Cell. 2015;57 (4 ):607–621. doi:10.1016/j.molcel.2015.01.021.25699709
Terakawa  T, Bisht  S, Eeftens  JM, Dekker  C, Haering  CH, Greene  EC. The condensin complex is a mechanochemical motor that translocates along DNA. Science. 2017;358 (6363 ):672–676. doi:10.1126/science.aan6516.28882993
Thacker  D, Mohibullah  N, Zhu  X, Keeney  S. Homologue engagement controls meiotic DNA break number and distribution. Nature. 2014;510 (7504 ):241–246. doi:10.1038/nature13120.24717437
Toth  A, Rabitsch  KP, Galova  M, Schleiffer  A, Buonomo  SBC, Nasmyth  K. Functional genomics identifies monopolin: a kinetochore protein required for segregation of homologs during meiosis i. Cell. 2000;103 (7 ):1155–1168. doi:10.1016/S0092-8674(00)00217-8.11163190
Treinin  M, Simchen  G. Mitochondrial activity is required for the expression of IME1, a regulator of meiosis in yeast. Curr Genet. 1993;23 (3 ):223–227. doi:10.1007/BF00351500.8435851
Trelles-Sticken  E, Adelfalk  C, Loidl  J, Scherthan  H. Meiotic telomere clustering requires actin for its formation and cohesin for its resolution. J Cell Biol. 2005;170 (2 ):213–223. doi:10.1083/jcb.200501042.16027219
Trelles-Sticken  E, Dresser  ME, Scherthan  H. Meiotic telomere protein Ndj1p is required for meiosis-specific telomere distribution, bouquet formation and efficient homologue pairing. J Cell Biol. 2000;151 (1 ):95–106. doi:10.1083/jcb.151.1.95.11018056
Trelles-Sticken  E, Loidl  J, Scherthan  H. Bouquet formation in budding yeast: initiation of recombination is not required for meiotic telomere clustering. J Cell Sci. 1999;112 (Pt 5 ):651–658. doi:10.1242/jcs.112.5.651.9973600
Tsubouchi  T, Macqueen  AJ, Roeder  GS. Initiation of meiotic chromosome synapsis at centromeres in budding yeast. Genes Dev. 2008;22 (22 ):3217–3226. doi:10.1101/gad.1709408.19056898
Tsubouchi  H, Ogawa  H. Exo1 roles for repair of DNA double-strand breaks and meiotic crossing over in Saccharomyces cerevisiae. Mol Biol Cell. 2000;11 (7 ):2221–2233. doi:10.1091/mbc.11.7.2221.10888664
Tsubouchi  H, Roeder  GS. The Mnd1 protein forms a complex with hop2 to promote homologous chromosome pairing and meiotic double-strand break repair. Mol Cell Biol. 2002;22 (9 ):3078–3088. doi:10.1128/MCB.22.9.3078-3088.2002.11940665
Tsubouchi  H, Roeder  GS. The importance of genetic recombination for fidelity of chromosome pairing in meiosis. Dev Cell. 2003;5 (6 ):915–925. doi:10.1016/S1534-5807(03)00357-5.14667413
Tsubouchi  H, Roeder  GS. Budding yeast Hed1 down-regulates the mitotic recombination machinery when meiotic recombination is impaired. Genes Dev. 2006;20 (13 ):1766–1775. doi:10.1101/gad.1422506.16818607
Tsubouchi  T, Roeder  GS. A synaptonemal complex protein promotes homology-independent centromere coupling. Science. 2005;308 (5723 ):870–873. doi:10.1126/science.1108283.15879219
Tsubouchi  T, Zhao  H, Roeder  GS. The meiosis-specific Zip4 protein regulates crossover distribution by promoting synaptonemal complex formation together with Zip2. Dev Cell. 2006;10 (6 ):809–819. doi:10.1016/j.devcel.2006.04.003.16740482
Tsuchiya  D, Gonzalez  C, Lacefield  S. The spindle checkpoint protein Mad2 regulates APC/C activity during prometaphase and metaphase of meiosis I in Saccharomyces cerevisiae. Mol Biol Cell. 2011;22 (16 ):2848–2861. doi:10.1091/mbc.e11-04-0378.21697504
Tsuchiya  D, Yang  Y, Lacefield  S. Positive feedback of NDT80 expression ensures irreversible meiotic commitment in budding yeast. PLoS Genet. 2014;10 (6 ):e1004398. doi:10.1371/journal.pgen.1004398.
Tung  KS, Hong  EJ, Roeder  GS. The pachytene checkpoint prevents accumulation and phosphorylation of the meiosis-specific transcription factor Ndt80. Proc Natl Acad Sci U S A. 2000;97 (22 ):12187–12192. doi:10.1073/pnas.220464597.11035815
Tung  KS, Roeder  GS. Meiotic chromosome morphology and behavior in zip1 mutants of Saccharomyces cerevisiae. Genetics. 1998;149 (2 ):817–832. doi:10.1093/genetics/149.2.817.9611194
Unal  E, Kinde  B, Amon  A. Gametogenesis eliminates age-induced cellular damage and resets life span in yeast. Science. 2011;332 (6037 ):1554–1557. doi:10.1126/science.1204349.21700873
Usui  T, Ogawa  H, Petrini  JH. A DNA damage response pathway controlled by Tel1 and the Mre11 complex. Mol Cell. 2001;7 (6 ):1255–1266. doi:10.1016/S1097-2765(01)00270-2.11430828
Vader  G, Blitzblau  HG, Tame  MA, Falk  JE, Curtin  L, Hochwagen  A. Protection of repetitive DNA borders from self-induced meiotic instability. Nature. 2011;477 (7362 ):115–119. doi:10.1038/nature10331.21822291
Valentin  G, Schwob  E, Della Seta  F. Dual role of the Cdc7-regulatory protein Dbf4 during yeast meiosis. J Biol Chem. 2006;281 (5 ):2828–2834. doi:10.1074/jbc.M510626200.16319063
Vincenten  N, Kuhl  LM, Lam  I, Oke  A, Kerr  AR, Hochwagen  A, Fung  J, Keeney  S, Vader  G, Marston  AL. The kinetochore prevents centromere-proximal crossover recombination during meiosis. eLife. 2015;4 :e10850. doi:10.7554/eLife.10850.
Voelkel-Meiman  K, Cheng  S-Y, Morehouse  SJ, MacQueen  AJ. Synaptonemal complex proteins of budding yeast define reciprocal roles in MutSγ-mediated crossover formation. Genetics. 2016;203 (3 ):1091–1103. doi:10.1534/genetics.115.182923.27184389
Voelkel-Meiman  K, Cheng  S-Y, Parziale  M, Morehouse  SJ, Feil  A, Davies  OR, de Muyt  A, Borde  V, MacQueen  AJ. Crossover recombination and synapsis are linked by adjacent regions within the N terminus of the Zip1 synaptonemal complex protein. PLoS Genet. 2019;15 (6 ):e1008201. doi:10.1371/journal.pgen.1008201.
Voelkel-Meiman  K, Johnston  C, Thappeta  Y, Subramanian  VV, Hochwagen  A, MacQueen  AJ. Separable crossover-promoting and crossover-constraining aspects of Zip1 activity during budding yeast meiosis. PLoS Genet. 2015;11 (6 ):e1005335. doi:10.1371/journal.pgen.1005335.
Voelkel-Meiman  K, Moustafa  SS, Lefrancois  P, Villeneuve  AM, MacQueen  AJ. Full-length synaptonemal complex grows continuously during meiotic prophase in budding yeast. PLoS Genet. 2012;8 (10 ):e1002993. doi:10.1371/journal.pgen.1002993.
Voelkel-Meiman  K, Oke  A, Feil  A, Shames  A, Fung  J, MacQueen  AJ. A role for synaptonemal complex in meiotic mismatch repair. Genetics. 2022;220 (2 ):iyab230. doi:10.1093/genetics/iyab230.
Voelkel-Meiman  K, Taylor  LF, Mukherjee  P, Humphryes  N, Tsubouchi  H, MacQueen  AJ. SUMO localizes to the central element of synaptonemal complex and is required for the full synapsis of meiotic chromosomes in budding yeast. PLoS Genet. 2013;9 (10 ):e1003837. doi:10.1371/journal.pgen.1003837.
Vrielynck  N, Chambon  A, Vezon  D, Pereira  L, Chelysheva  L, De Muyt  A, Mézard  C, Mayer  C, Grelon  M. A DNA topoisomerase VI-like complex initiates meiotic recombination. Science. 2016;351 (6276 ):939–943. doi:10.1126/science.aad5196.26917763
Wan  L, Niu  H, Futcher  B, Zhang  C, Shokat  KM, Boulton  SJ, Hollingsworth  NM. Cdc28–Clb5 (CDK-S) and Cdc7–Dbf4 (DDK) collaborate to initiate meiotic recombination in yeast. Genes Dev. 2008;22 (3 ):386–397. doi:10.1101/gad.1626408.18245450
Wanat  JJ, Kim  KP, Koszul  R, Zanders  S, Weiner  B, Kleckner  N, Alani  E. Csm4, in collaboration with Ndj1, mediates telomere-led chromosome dynamics and recombination during yeast meiosis. PLoS Genet. 2008;4 (9 ):e1000188. doi:10.1371/journal.pgen.1000188.
Wang  Y, Chang  C-Y, Wu  J-F, Tung  K-S. Nuclear localization of the meiosis-specific transcription factor Ndt80 is regulated by the pachytene checkpoint. Mol Biol Cell. 2011;22 (11 ):1878–1886. doi:10.1091/mbc.e10-12-1011.21471004
Weidberg  H, Moretto  F, Spedale  G, Amon  A, van Werven  FJ. Nutrient control of yeast gametogenesis is mediated by TORC1, PKA and energy availability. PLoS Genet. 2016;12 (6 ):e1006075. doi:10.1371/journal.pgen.1006075.
Weiner  BM, Kleckner  N. Chromosome pairing via multiple interstitial interactions before and during meiosis in yeast. Cell. 1994;77 (7 ):977–991. doi:10.1016/0092-8674(94)90438-3.8020104
West  SC, Blanco  MG, Chan  YW, Matos  J, Sarbajna  S, Wyatt  HDM. Resolution of recombination intermediates: mechanisms and regulation. Cold Spring Harb Symp Quant Biol. 2015;80 :103–109. doi:10.1101/sqb.2015.80.027649.26370409
West  AMV, Komives  EA, Corbett  KD. Conformational dynamics of the Hop1 HORMA domain reveal a common mechanism with the spindle checkpoint protein Mad2. Nucleic Acids Res. 2018;46 (1 ):279–292. doi:10.1093/nar/gkx1196.29186573
West  AM, Rosenberg  SC, Ur  SN, Lehmer  MK, Ye  Q, Hagemann  G, Caballero  I, Usón  I, MacQueen  AJ, Herzog  F, et al  A conserved filamentous assembly underlies the structure of the meiotic chromosome axis. eLife. 2019;8 :e40372. doi:10.7554/eLife.40372.
Wilkins  AS, Holliday  R. The evolution of meiosis from mitosis. Genetics. 2009;181 (1 ):3–12. doi:10.1534/genetics.108.099762.19139151
Winey  M, Morgan  GP, Straight  PD, Giddings  TH  Jr, Mastronarde  DN. Three-dimensional ultrastructure of Saccharomyces cerevisiae meiotic spindles. Mol Biol Cell. 2005;16 (3 ):1178–1188. doi:10.1091/mbc.e04-09-0765.15635095
Winter  E . The Sum1/Ndt80 transcriptional switch and commitment to meiosis in Saccharomyces cerevisiae. Microbiol Mol Biol Rev. 2012;76 (1 ):1–15. doi:10.1128/MMBR.05010-11.22390969
Woltering  D, Baumgartner  B, Bagchi  S, Larkin  B, Loidl  J, de los Santos  T, Hollingsworth  NM. Meiotic segregation, synapsis, and recombination checkpoint functions require physical interaction between the chromosomal proteins Red1p and Hop1p. Mol Cell Biol. 2000;20 (18 ):6646–6658. doi:10.1128/MCB.20.18.6646-6658.2000.10958662
Woo  T-T, Chuang  C-N, Higashide  M, Shinohara  A, Wang  T-F. Dual roles of yeast Rad51 N-terminal domain in repairing DNA double-strand breaks. Nucleic Acids Res. 2020;48 (15 ):8474–8489. doi:10.1093/nar/gkaa587.32652040
Wright  WD, Heyer  WD. Rad54 functions as a heteroduplex DNA pump modulated by its DNA substrates and Rad51 during D loop formation. Mol Cell. 2014;53 (3 ):420–432. doi:10.1016/j.molcel.2013.12.027.24486020
Wu  H-Y, Burgess  SM. Ndj1, a telomere-associated protein, promotes meiotic recombination in budding yeast. Mol Cell Biol. 2006;26 (10 ):3683–3694. doi:10.1128/MCB.26.10.3683-3694.2006.16648465
Xaver  M, Huang  L, Chen  D, Klein  F. Smc5/6-Mms21 prevents and eliminates inappropriate recombination intermediates in meiosis. PLoS Genet. 2013;9 (12 ):e1004067. doi:10.1371/journal.pgen.1004067.
Xie  J, Pierce  M, Gailus-Durner  V, Wagner  M, Winter  E, Vershon  AK. Sum1 and Hst1 repress middle sporulation-specific gene expression during mitosis in Saccharomyces cerevisiae. EMBO J. 1999;18 (22 ):6448–6454. doi:10.1093/emboj/18.22.6448.10562556
Xu  L, Ajimura  M, Padmore  R, Klein  C, Kleckner  N. NDT80, a meiosis-specific gene required for exit from pachytene in Saccharomyces cerevisiae. Mol Cell Biol. 1995;15 (12 ):6572–6581. doi:10.1128/MCB.15.12.6572.8524222
Xu  Z, Cetin  B, Anger  M, Cho  US, Helmhart  W, Nasmyth  K, Xu  W. Structure and function of the PP2A-shugoshin interaction. Mol Cell. 2009;35 (4 ):426–441. doi:10.1016/j.molcel.2009.06.031.19716788
Xu  L, Kleckner  N. Sequence non-specific double-strand breaks and interhomolog interactions prior to double-strand break formation at a meiotic recombination hot spot in yeast. EMBO J. 1995;14 (20 ):5115–5128. doi:10.1002/j.1460-2075.1995.tb00194.x.7588640
Xu  L, Weiner  BM, Kleckner  N. Meiotic cells monitor the status of the interhomolog recombination complex. Genes Dev. 1997;11 (1 ):106–118. doi:10.1101/gad.11.1.106.9000054
Yamashita  K, Shinohara  M, Shinohara  A. Rad6-Bre1-mediated histone H2B ubiquitylation modulates the formation of double-strand breaks during meiosis. Proc Natl Acad Sci U S A. 2004;101 (31 ):11380–11385. doi:10.1073/pnas.0400078101.15280549
Yang  X, Song  M, Wang  Y, Tan  T, Tian  Z, Zhai  B, Yang  X, Tan  Y, Cao  Y, Dai  S, et al  The ubiquitin-proteasome system regulates meiotic chromosome organization. Proc Natl Acad Sci U S A. 2022;119 (17 ):e2106902119. doi:10.1073/pnas.2106902119.
Yisehak  L, MacQueen  AJ. HO endonuclease-initiated recombination in yeast meiosis fails to promote homologous centromere pairing and is not constrained to utilize the Dmc1 recombinase. G3 (Bethesda). 2018;8 (11 ):3637–3659. doi:10.1534/g3.118.200641.30254180
Yu  H-G, Koshland  DE. Meiotic condensin is required for proper chromosome compaction, SC assembly, and resolution of recombination-dependent chromosome linkages. J Cell Biol. 2003;163 (5 ):937–947. doi:10.1083/jcb.200308027.14662740
Yu  H-G, Koshland  D. The Aurora kinase Ipl1 maintains the centromeric localization of PP2A to protect cohesin during meiosis. J Cell Biol. 2007;176 (7 ):911–918. doi:10.1083/jcb.200609153.17371833
Zakharyevich  K, Ma  Y, Tang  S, Hwang  PY-H, Boiteux  S, Hunter  N. Temporally and biochemically distinct activities of Exo1 during meiosis: double-strand break resection and resolution of double Holliday junctions. Mol Cell. 2010;40 (6 ):1001–1015. doi:10.1016/j.molcel.2010.11.032.21172664
Zakharyevich  K, Tang  S, Ma  Y, Hunter  N. Delineation of joint molecule resolution pathways in meiosis identifies a crossover-specific resolvase. Cell. 2012;149 (2 ):334–347. doi:10.1016/j.cell.2012.03.023.22500800
Zeng  X, Saunders  WS. The Saccharomyces cerevisiae centromere protein Slk19p is required for two successive divisions during meiosis. Genetics. 2000;155 (2 ):577–587. doi:10.1093/genetics/155.2.577.10835382
Zenvirth  D, Loidl  J, Klein  S, Arbel  A, Shemesh  R, Simchen  G. Switching yeast from meiosis to mitosis: double-strand break repair, recombination and synaptonemal complex. Genes Cells. 1997;2 (8 ):487–498. doi:10.1046/j.1365-2443.1997.1370335.x.9348039
Zhang  L, Kim  KP, Kleckner  NE, Storlazzi  A. Meiotic double-strand breaks occur once per pair of (sister) chromatids and, via Mec1/ATR and Tel1/ATM, once per quartet of chromatids. Proc Natl Acad Sci U S A. 2011;108 (50 ):20036–20041. doi:10.1073/pnas.1117937108.22123968
Zhang  L, Wang  S, Yin  S, Hong  S, Kim  KP, Kleckner  N. Topoisomerase II mediates meiotic crossover interference. Nature. 2014;511 (7511 ):551–556. doi:10.1038/nature13442.25043020
Zhu  X, Keeney  S. High-resolution global analysis of the influences of Bas1 and Ino4 transcription factors on meiotic DNA break distributions in Saccharomyces cerevisiae. Genetics. 2015;201 (2 ):525–542. doi:10.1534/genetics.115.178293.26245832
Zickler  D, Kleckner  N. The leptotene–zygotene transition of meiosis. Annu Rev Genet. 1998;32 (1 ):619–697. doi:10.1146/annurev.genet.32.1.619.9928494
Zickler  D, Kleckner  N. Meiotic chromosomes: integrating structure and function. Annu Rev Genet. 1999;33 (1 ):603–754. doi:10.1146/annurev.genet.33.1.603.10690419
Zierhut  C, Berlinger  M, Rupp  C, Shinohara  A, Klein  F. Mnd1 is required for meiotic interhomolog repair. Curr Biol. 2004;14 (9 ):752–762. doi:10.1016/j.cub.2004.04.030.15120066
Ziesel  A, Weng  Q, Ahuja  JS, Bhattacharya  A, Dutta  R, Cheng  E, Börner  GV, Lichten  M, Hollingsworth  NM. Rad51-mediated interhomolog recombination during budding yeast meiosis is promoted by the meiotic recombination checkpoint and the conserved Pif1 helicase. PLoS Genet. 2022;18 (12 ):e1010407. doi:10.1371/journal.pgen.1010407.
