==== Front Mitochondrial DNA B Resour Mitochondrial DNA B Resour Mitochondrial DNA. Part B, Resources 2380-2359 Taylor & Francis 33366427 10.1080/23802359.2019.1696245 1696245 Version of Record Research Article Mitogenome Announcement The complete chloroplast genome sequence of Lilium speciosum Var. gloriosoides, an important breeding parent Y. Liu et al. Liu Yixin a* Huang Jie b* https://orcid.org/0000-0002-8640-5716 Moe The Su c Khan Mohammad Sayyar d Xue Jing a Zhang Xiuhai a Du Yunpeng a a Beijing Key Laboratory of Agricultural Genetic Resources and Biotechnology, Beijing Functional Flower Engineering Technology Research Center, Beijing Agro-Biotechnology Research Center, Beijing Academy of Agriculture and Forestry Sciences, Beijing, China; b Division for Achievements Transformation and Promotion, Beijing Academy of Agriculture and Forestry Sciences, Beijing, China; c Biotechnology Research Department, Ministry of Education, Mandalay Division, Pharmaceutical Research Laboratory, Kyaukse, Myanmar; d Genomics and Bioinformatics Laboratory, Institute of Biotechnology and Genetic Engineering (IBGE), Faculty of Crop Production Sciences, University of Agriculture, Peshawar, Pakistan * Yixin Liu and Jie Huang contributed equally to this work. CONTACT Xiuhai Zhang zhangxiuhai@baafs.net.cn; Yunpeng Du dyp_851212@126.comBeijing Key Laboratory of Agricultural Genetic Resources and Biotechnology, Beijing Functional Flower Engineering Technology Research Center, Beijing Agro-Biotechnology Research Center, Beijing Academy of Agriculture and Forestry Sciences, Beijing100097, China 9 12 2019 2020 5 1 7172 © 2019 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group. 2019 The Author(s) https://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Abstract Lilium speciosum var. gloriosoides is an important breeding parent with high ornamental and edible value in worldwide. In this study, we reported a complete chloroplast genome of L. speciosum var. gloriosoides, which was de novo assembled using the next-generation sequencing data. The whole genome is 152,912 bp in length and includes one large single copy (LSC) region of 70,693 bp, one small single copy (SSC) region of 17,517 bp, and a pair of inverted repeat (IR) region of 26,539 bp. A total of 131 functional genes were encoded, consisting of 76 protein-coding genes, 36 transfer RNA genes, and eight ribosomal RNA genes. The overall AT content of the chloroplast genome is 63.00%. In the maximum likelihood, a strong phylogenetic signal showed that L. speciosum var. gloriosoides is a species of Lilium, which is the first major genome in section Archelirion. Keywords Lilium speciosum var. gloriosoides complete chloroplast genome next generation sequencing chloroplast phylogenetic analysis National Natural Science Foundation of China10.13039/50110000180931601781 Youth Research Fund of Beijing Academy of Agriculture and ForestryQNJJ201910 This work was supported by the National Natural Science Foundation of China [Grant No.31601781] and Youth Research Fund of Beijing Academy of Agriculture and Forestry [QNJJ201910]. ==== Body Lilium speciosum var. gloriosoides is a perennial flower bulbs belonging to the section Archelirion, the genus Lilium (Liliaceae), which is characterized by bulb flattened subglobose, nectaries with red, fimbriate projections, and papillae on both surfaces (Liang and Tamura 2000). Lilium speciosum var. gloriosoides occurs in SW Japan (Kyushu, Shikoku); this species is only distributed in Anhui, Guangxi, Hunan, Taiwan, and Zhejiang of Province in China. It has high medicinal, ornamental, and horticultural values. Particularly, the bulbs can edible and medicinal value of antiviral activity (Chen et al. 2019). However, largely due to anthropogenic overharvesting and loss of natural habitat, the resources of L. speciosum var. gloriosoides have been dramatically decreased. Now, the species is distribution became shrinking in China, a good knowledge of its genomics datum would contribute to the effective management, the genetic background can be better understood, which is helpful in promoting the preservation of the species and great reference value for lily breeding. Simultaneously, this is useful for the conservation and exploitation of this valuable germplasm, and the molecular identification and phylogenetic study with other species in Lilium. In this study, we assembled and annotated the complete chloroplast genome of L. speciosum var. gloriosoides from Next Generation Sequencing data. Samples of L. speciosum var. gloriosoides were collected from Tianmu Mountains (Geospatial coordinates: N:30°20′40″,E:119°25′30″) in Zhejiang, China, and DNA was stored at the herbarium of Institute of Botany, CAS (Herbarium number: BOP201947). Total genomic DNA was extracted from fresh leaves, according to the DNA secure Plant Kit (Aidlab). An Illumina paired-end library was prepared and used for Next Generation Sequencing on the HiSeq4000 Sequencing System at Novogene (http://www.novogene.com/index.php), Beijing, China. Then, top-quality reads were produced to map the whole genome using the program Sequencher 5.0 (Gene Codes Corporation, USA), with that of reported chloroplast genome of Lilium species (Kim and Kim 2013; Bi et al. 2016; Hwang et al. 2016; Du et al. 2016, 2017) as the reference. Assembled chloroplast genome was annotated using Dual Organellar GenoMe Annotator (http://dogma.ccbb.utexas.edu/) (Wyman et al. 2004). A physical map of the genome was drawn using OGDraw v1.2 (Lohse et al. 2013). Whole chloroplast genome sequence of L. speciosum var. gloriosoides has been submitted to GenBank with the accession number MN509267. The genome is 152,912 bp in length and includes one large single copy (LSC) region of 70,693 bp, one small single copy (SSC) region of 17,517 bp, and two inverted repeat (IR) regions of 26,539 bp. It contains 131 genes, comprising 84 protein-coding genes, 36 transfer RNA, and eight ribosomal RNA genes. Among these genes, there are 20 genes that contain a single intron, which are trn-KUUU, rps16, atpF, rpoC1, ycf3, trnL-CAA, trnV-UAC, clpP, petB, petD, rpl16, rpl2, ndhB, rps12, trnI-GAU, ndhA, trnA-UGC, trnI-GAU, ndhB, rpl2, and two genes ycf3 and clpP contained two introns. Out of these 19 genes, three genes (trnA-UGC, trnI-GAU, ndhB, rpl2, rps12) are partially located within in the IR regions. This genome composition is asymmetric (31.1% A, 18.9% C, 18.2% G, and 31.9% T) with an overall A + T content of 63%. The A + T content of the IR regions (57.6%) is obviously lower than those of the SSC (69.4%) and LSC (65.1%) regions, respectively. Phylogenetic analysis was constructed using total chloroplast genome sequence of L. speciosum var. gloriosoides with nine published sequences in Lilium and outgroups of Fritillaria hupehensis and Fritillaria taipaiensis using maximum likelihood (ML) analyses (Figure 1). The ML tree was constructed at CIPRES (http://www.phylo.org) (Miller et al. 2010) using RAxML-HPC Black Box v.8.1.24 and branch support was estimated with 1000 bootstrap replicates. The ML tree results display 10 of 12 nodes that were supported by bootstrap values 100%, and the other two nodes by values < 50%, sect. Archelirion have no chloroplast genome sequenced, L. speciosum var. gloriosoides gathered on a single branch. The clustering of sect. Sinomartagon, sect. Leucolirion, and sect. Martagon is very clear and has a high support rate. The complete chloroplast genome can be subsequently utilized for genetic diversity, identifying species, taxonomy, and phylogenetic evolution studies for this species. Sect. Leucolirion is the original parent of Oriental hybrid. It is of great reference value to the cultivation breeding. It has important medicinal and ornamental value and can provide reference for other sect. Archelirion chloroplast genome sequencing. Simultaneously, it provides essential data for further study on the accurately identifying species, taxonomy, and phylogenetic resolution and evolution for the genus Lilium, and the available genome information also provides valuable insight into conservation and exploitation efforts for this endangered species. Figure 1. Phylogenetic relationships of 15 sequences in the genus Lilium with outgroups of two Fritillaria species constructed by whole chloroplast genome with the maximum likelihood (ML) analyses. The bootstrap values were based on 1000 replicates. Disclosure statement No potential conflict of interest was reported by the authors. ==== Refs References Bi Y, Du Y, Chen X, Yang F, Xue J, Zhang X, Dong R. 2016. The complete chloroplast genome sequence of Lilium fargesii (Lilium, Liliaceae). Conserv Genet Resour. 8 (4 ):419–422. Chen W, Zhang H, Wang J. 2019. A new triterpenoid from the bulbs of Lilium speciosum var. gloriosoides. Chem Nat Compd. 55 (2 ):289–291. Du Y, Bi Y, Chen X, Yang F, Xue J, Zhang X. 2016. The complete chloroplast genome of Lilium cernuum: genome structure and evolution. Conserv Genet Resour. 8 (4 ):375–378. Du Y-P, Bi Y, Yang F-P, Zhang M-F, Chen X-Q, Xue J, Zhang X-h. 2017. Complete chloroplast genome sequences of Lilium: insights into evolutionary dynamics and phylogenetic analyses. Sci Rep. 7 (1 ):5751.28720853 Hwang YJ, Lee SC, Kim K, Choi BS, Park JY, Yang TJ, Lim KB. 2016. The complete chloroplast genome of Lilium distichum Nakai (Liliaceae). Mitochondrial DNA A DNA MappSeq Anal. 27 (6 ):4633–4634.27159684 Kim JS, Kim JH. 2013. Comparative genome analysis and phylogenetic relationship of order Liliales insight from the complete plastid genome sequences of two Lilies (Lilium longiflorum and Alstroemeria aurea). PLoS One. 8 (6 ):e68180.23950788 Liang SY, Tamura MN. 2000. Lilium Linnaeus Vol 24. Flora of China. Beijing/St. Louis (MO): Science Press/Missouri Botanical Garden Press. Lohse M, Drechsel O, Kahlau S, Bock R. 2013. Organellar Genome DRAW–a suite of tools for generating physical maps of plastid and mitochondrial genomes and visualizing expression data sets. Nucleic Acids Res. 41 (W1 ):W575–W581.23609545 Miller MA, Pfeiffer W, Schwartz T. 2010. Creating the CIPRES Science Gateway for inference of large phylogenetic trees. Paper presented at the Gateway Computing Environments Workshop (GCE); Nov. 14. Wyman SK, Jansen RK, Boore JL. 2004. Automatic annotation of organellar genomes with DOGMA. Bioinformatics. 20 (17 ):3252–3255.15180927