
==== Front
Environ Microbiol Rep
Environ Microbiol Rep
10.1111/(ISSN)1758-2229
EMI4
Environmental Microbiology Reports
1758-2229
John Wiley & Sons, Inc. Hoboken, USA

10.1111/1758-2229.70012
EMI470012
Brief Report
Brief Report
Pyricularia oryzae enhances Streptomyces griseus growth via non‐volatile alkaline metabolites
P. oryzae Enhances S. griseus Growth
Sugiura et al.
Sugiura Risa 1
Arazoe Takayuki 1
Motoyama Takayuki 2
Osada Hiroyuki 3
Kamakura Takashi 1
Kuramochi Kouji https://orcid.org/0000-0003-0571-9703
1
Furuyama Yuuki https://orcid.org/0000-0003-0851-5204
1 y.furuyama@rs.tus.ac.jp

1 Department of Applied Biological Science, Faculty of Science and Technology Tokyo University of Science Noda‐shi Japan
2 Plant Immunity Research Group RIKEN Center for Sustainable Resource Science (CSRS) Wako‐shi Japan
3 Institute of Microbial Chemistry Shinagawa‐ku Japan
* Correspondence
Yuuki Furuyama, Department of Applied Biological Science, Faculty of Science and Technology, Tokyo University of Science, 2641 Yamazaki, Noda‐shi 278‐8510, Japan.
Email: y.furuyama@rs.tus.ac.jp

23 9 2024
10 2024
16 5 10.1111/emi4.v16.5 e7001221 5 2024
03 9 2024
© 2024 The Author(s). Environmental Microbiology Reports published by John Wiley & Sons Ltd.
https://creativecommons.org/licenses/by/4.0/ This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

Abstract

Chemical compounds that affect microbial interactions have attracted wide interest. In this study, Streptomyces griseus showed enhanced growth when cocultured with the rice blast fungus Pyricularia oryzae on potato dextrose agar (PDA) medium. An improvement in S. griseus growth was observed before contact with P. oryzae , and no growth‐promoting effect was observed when the growth medium between the two microorganisms was separated. These results suggested that the chemicals produced by P. oryzae diffused through the medium and were not volatile. A PDA plate supplemented with phenol red showed that the pH of the area surrounding P. oryzae increased. The area with increased pH promoted S. griseus growth, suggesting that the alkaline compounds produced by P. oryzae were involved in this growth stimulation. In contrast, coculture with the soilborne plant pathogen Fusarium oxysporum and entomopathogenic fungus Cordyceps tenuipes did not promote S. griseus growth. Furthermore, DL‐α‐Difluoromethylornithine, a polyamine biosynthesis inhibitor, prevented the increase in pH and growth promotion of S. griseus by P. oryzae . These results indicated that P. oryzae increased pH by producing a polyamine.

The growth of Streptomyces griseus was promoted on potato dextrose agar (PDA) medium when cocultured with Pyricularia oryzae, but not when cultured alone. A PDA plate supplemented with phenol red indicated that P. oryzae increased the pH of the surrounding area. The area with increased pH promoted S. griseus growth, suggesting that the alkaline compounds produced by P. oryzae stimulated this growth.

the Japan Society for Bioscience, Biotechnology, and Agrochemistry source-schema-version-number2.0
cover-dateOctober 2024
details-of-publishers-convertorConverter:WILEY_ML3GV2_TO_JATSPMC version:6.4.8 mode:remove_FC converted:24.09.2024
Sugiura, R. , Arazoe, T. , Motoyama, T. , Osada, H. , Kamakura, T. , Kuramochi, K. et al. (2024) Pyricularia oryzae enhances Streptomyces griseus growth via non‐volatile alkaline metabolites. Environmental Microbiology Reports, 16 (5 ), e70012. Available from: 10.1111/1758-2229.70012
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pmcINTRODUCTION

Fungi and bacteria interact with each other and build a complex community in natural environments. However, conventional microbiology relies on studies with pure culture, which leads to behavioural observations that differ from the natural state (Pierce et al., 2021). Microbial behaviour can be influenced by neighbouring organisms, leading to various consequences, such as modification of virulence of human pathogens (Santus et al., 2021), biofilm formation (Rodrigues et al., 2020), growth improvement (Jones et al., 2017), and increases in the production of specialized metabolites (Fischer et al., 2018.; Netzker et al., 2015; Stubbendieck & Straight, 2016). Therefore, a thorough understanding of microbial ecology in the natural environment is necessary to fully exploit the potential of useful microorganisms and develop efficient methods for controlling pathogens. This requires the elucidation of molecular‐level interactions among various microorganisms. However, identifying specific species of microorganisms involved in such interactions and the signalling molecules exchanged among them remains a great challenge.

The rice blast fungus, Pyricularia oryzae (syn. Magnaporthe oryzae), is a model plant pathogenic fungus that causes the most devastating disease of rice worldwide (Dean et al., 2005). The blast fungi spread through airborne conidia and colonize the leaves and panicles of host plants (Fernandes et al., 2017). To control blast disease, a detailed understanding of the ecology of this fungus in natural environments is necessary; however, most studies regarding this fungus have focused on its infection behaviour, and the ecology of this fungus outside plants, such as in soil, remains unknown. Some studies suggest that blast fungi are distributed in soil (Marcel et al., 2010; Sesma & Osbourn, 2004). Multitudes of microorganisms interact in soil. Therefore, soil‐residing P. oryzae may also interact with other microorganisms. However, reports analysing the interactions between this fungus and other microorganisms are limited.

S. griseus is a soil‐dwelling bacterium and primarily produces secondary metabolites, including antibiotics, such as cycloheximide (Fischer et al., 2018.; Netzker et al., 2015; Pittenger & McCoy, 1953). Secondary metabolites produced by actinomycetes are used in medicine and agriculture. Antibiotics and volatile organic compounds play an important role in biologically controlling phytopathogenic microorganisms and inhibiting bacterial quorum sensing (Wang et al., 2024). Furthermore, actinomycetes live in plants and induce disease resistance by expressing resistance‐associated genes in the host and accumulating phytoalexins (Ansari et al., 2020). Streptomyces spp. effectively suppress the onset of rice blast disease when simultaneously inoculated with P. oryzae (Law et al., 2017); this report indicates that Streptomyces spp. interact with P. oryzae in rice plants; however, the mechanisms underlying this interaction have not been fully elucidated.

P. oryzae and S. griseus compete with each other by producing secondary metabolites that exhibit antimicrobial activity (Furuyama et al., 2021). Therefore, the present study aimed to identify the mechanism of interaction between these two species in a laboratory setting.

EXPERIMENTAL PROCEDURES

Strains, medium, and culture conditions

P. oryzae Hoku1, Kyu89‐246, and P2 isolates, Fusarium oxysporum f. sp. lycopersici MAFF103036 isolate, and Cordyceps tenuipes TUS‐1 isolate were used in this study. Fungi were grown on Potato Dextrose Agar (PDA; Difco Co., Franklin Lakes, NJ, USA) plates. The confrontation culture was grown on PDA plates at 28°C. In some studies, phenol red was added to PDA (final concentration: 0.0025%); and DL‐α‐Difluoromethylornithine (DMFO) (Nacalai Tesque Inc., Kyoto, Japan) was added (final concentration: 0.1, 0.5, and 1.0 mM). S. griseus (NBRC13350) was used as a competitor. This bacterium was grown on a yeast extract agar (YSA; 0.2% yeast extract, 1% soluble starch, 1.5% agar, pH 7.3) plates at 28°C. Spores scraped from the plates were suspended in sterile distilled water and collected by centrifugation at 4000 × g for 5 min at 25°C. The pH of the media was measured using a LAQUAact pH meter (HORIBA, Ltd., Kyoto, Japan).

Confrontation culture

The confrontation culture was grown on 90‐mm PDA plates as previously described (Furuyama et al., 2021). In brief, spore solutions (10 μL, 1.0 × 108 cells/mL) of S. griseus and agar plugs of precultured P. oryzae, F. oxysporum, or C. tenuipes were inoculated to PDA plates and incubated at 28°C for 7–29 days; the initial distance of bacteria and fungi were 2, 2, and 1 cm, respectively. The medium between P. oryzae and S. grisea (2 mm) was removed using a spatula to separate their growth zones.

Extraction and detection of ammonia

To extract ammonia, P. oryzae was cultured on filter paper and placed on phenol red‐supplemented PDA. After the media turned red (approximately 15 dpi), P. oryzae mycelia were removed using filter paper. The PDA media was then hollowed out in six places using sterile straws. Each agar fragment was placed in a 15 mL tube and extracted overnight at 4°C in 1.5 mL Milli‐Q water. The supernatant was used as ammonia extract and ammonia was detected using a modified indophenol method (Nishikawa, 2023). An ammonia solution (28%) (Nacalai Tesque Inc., Kyoto, Japan) was serially diluted in a half‐log dilution series covering a range of 10−3 to 1/8 × 10−3 and used as the standard solution. An aqueous solution of sodium hypochlorite was diluted 15 times and used as solution 1. A 1.0 M aqueous solution of sodium hydroxide was used as solution 2. Next, 1.2 M sodium salicylate (FUJIFILM Wako Pure Chemicals, Tokyo, Japan), 26 mM potassium hexacyanoferrate(II) trihydrate (FUJIFILM Wako Pure Chemicals), and 20 mM ethylenediaminetetraacetic acid disodium salt dihydrate (Nacalai Tesque Inc.) were mixed to prepare solution 3. Solutions 1–3 (500 μL each) were mixed in a sample tube; 500 μL standard ammonia solution or water extract was added to the mixture, and the reaction was performed at 25°C. After a light blue colour appeared in the sample tube containing standard ammonia solution, 200 μL reaction mixture from each sample tube was transferred to a 96‐well plate, and the optical density was measured at 635 nm.

Statistical analysis

All experimental results are expressed as the mean ± standard deviation of three replicates. Differences were analysed using Dunnett's test to determine differences between experimental samples (triplicate) using Microsoft Office Excel and R software (version 4.0.2, R Foundation for Statistical Computing, Austria).

RESULTS

P. oryzae promotes the growth of S. griseus

The growth of S. griseus was promoted by confrontation with P. oryzae on PDA medium (Figure 1A); however, when cultured alone, S. griseus did not grow under the same conditions (Figure 1B). Growth induction was observed at 6 days post‐inoculation (dpi) when the distance between the two microorganisms on the plate was approximately 5 mm (Figure 1A). Because the growth of S. griseus was affected without physical contact, metabolites produced by P. oryzae might be involved in this phenomenon.

FIGURE 1 Photographs showing the growth promotion of Streptomyces griseus by Pyricularia oryzae. (A) Confrontation culture of P. oryzae (left colony) and S. griseus (right colony). (B) S. griseus cultured alone at pH 4.8 showing no growth. Images were captured at 6 dpi. The black triangle indicates the point of inoculation of S. griseus .

pH of the medium is important for the growth of S. griseus

In the present study, the pH of the PDA medium was 4.8, although the optimal pH for the growth of S. griseus is 7.5. Therefore, we speculate that the low pH condition inhibited the growth of S. griseus. The pH of the PDA medium adjusted to 7.5 resulted in the growth of S. griseus even as a single culture (Figure 2). This result led us to consider that the pH around the S. griseus colony was affected by compounds produced by P. oryzae.

FIGURE 2 Photograph showing the growth of Streptomyces griseus when the pH of the PDA medium was adjusted to 7.5. On the neutralized PDA, S. griseus could grow without Pyricularia oryzae. The image was captured at 1 dpi. The black triangle indicates the point of inoculation of S. griseus .

Changes in the pH of the medium by P. oryzae induces the growth of S. griseus

To verify whether P. oryzae can change the extracellular pH, the PDA medium was supplemented with phenol red. When the pH of the medium increased, the colour of the medium changed from yellow to red (Figure 3A). pH around the P. oryzae colony increased over time (Figure 3B,C), whereas, in a single culture of S. griseus, the pH of the medium did not change (Figure 3D). In addition, when the red area reached the S. griseus colony, the growth of S. griseus was promoted (Figure 3B,C).

FIGURE 3 Photographs showing the growth of Pyricularia oryzae with increasing medium pH. (A) Relationship between pH of media and colour. (B) When the red zone reached the colony of Streptomyces griseus its growth was promoted at 10 dpi. (C) Growth of S. griseus at 13 dpi. (D) No change in the pH of the medium in a single culture of S. griseus at 13 dpi. The black triangle indicates the point of inoculation of S. griseus .

No growth induction with medium removal between P. oryzae and S. griseus

S. griseus growth was not induced when the medium between the growth zone of these two microorganisms was removed, even at 10 dpi (Figure 4). P. oryzae increased the pH of the medium regardless of the co‐existence of S. griseus. However, the pH of the separated area did not increase (Figure 4). These results suggest that P. oryzae produced non‐volatile alkaline compounds, and its production was independent of induction by S. griseus.

FIGURE 4 Photograph showing the growth of Pyricularia oryzae and Streptomyces griseus on separated PDA. No growth of S. griseus and pH increased at 13 dpi when growth media were separated. The black triangle indicates the point of inoculation of S. griseus .

Other isolates of P. oryzae can increase pH, enhancing the growth of S. griseus

Confrontation cultures were grown using different isolates of P. oryzae (Kyu89‐246 and P2). These isolates also changed the pH of the medium and showed a growth‐inducing effect (Figure 5).

FIGURE 5 Photographs showing the confrontation culture using other isolates of Pyricularia oryzae. Mycelial pictures of the (A) Kyu89‐246 isolate of P. oryzae at 7 dpi; (B) P2 isolate of P. oryzae at 8 dpi. The black triangle indicates the point of inoculation of Streptomyces griseus .

F. oxysporum and C. tenuipes do not promote the growth of S. griseus nor increase the pH of the medium

To test whether other pathogenic fungi show similar growth‐promoting potential, the soilborne plant pathogenic fungus, F. oxysporum, and an insect pathogenic fungus, C. tenuipes, were cocultured with S. griseus. These fungi did not promote S. griseus growth (Figure 6). This result indicates that growth‐promoting potential is not widely observed in all pathogenic fungi, but is specific to P. oryzae.

FIGURE 6 Photographs showing the confrontation culture using (A) Fusarium oxysporum and (B) Cordyceps tenuipes. Images were captured at 7 and 29 dpi for F. oxysporum and C. tenuipes , respectively. The black triangle indicates the point of inoculation of Streptomyces griseus .

Confrontation culture using phenol red in the medium showed no increase in pH of the medium by F. oxysporum and C. tenuipes (Figure 7). These results strongly support the fact that the metabolites produced by P. oryzae increase the pH of the medium and induce the growth of S. griseus.

FIGURE 7 Photographs showing the confrontation culture using Fusarium oxysporum and Cordyceps tenuipes using phenol red in the medium. (A) F. oxysporum at 7 dpi and (B) C. tenuipes at 29 dpi do not change the pH of the medium. The black triangle indicates the point of inoculation of Streptomyces griseus .

Ammonia is not the target compound

Ammonia was considered a potential compound responsible for increasing the pH of the medium (Fernandes et al., 2017; Landraud et al., 2013; Vylkova, 2017). However, ammonia was not detected in the samples extracted from the plate in which the growth of S. griseus was promoted by P. oryzae (Figure 8). This indicated that the active compound produced by P. oryzae was not ammonia.

FIGURE 8 Ammonia detection using the indophenol blue method. The absorption at 635 nm using a UV–vis spectrometer for indophenol blue was measured. The absorbance of ammonia standard solutions (7, 3.5, 1.75, and 0.895 ppm) and the samples extracted from coculture plates (Coculture plate) are indicated. Ammonia was not detected from coculture plates; bars: Standard deviation.

DMFO limited the pH increase of the medium and growth promotion of S. griseus

DL‐α‐difluoromethylornithine (DMFO), an irreversible inhibitor of ornithine decarboxylase, which is a key enzyme of polyamine biosynthesis, was added to the coculture plate. DMFO inhibited both the rise in pH and growth promotion of S. griseus (Figure 9). This suggested that active compound(s) are polyamine(s).

FIGURE 9 DMFO inhibited the increase in pH and Streptomyces griseus growth promotion. DMFO was treated to co‐culture plate of Pyricularia oryzae Hoku‐1 and S. griseus with (A) 0 mM (non‐treated); (B) 0.1 mM; (C) 0.5 mM; (D) 1 mM. Images were captured at 10 dpi. The black triangle indicates the point of inoculation of S. griseus .

DISCUSSION

P. oryzae causes extensive damage to rice plants (Fernandes et al., 2017). Owing to issues, such as the emergence of drug‐resistant strains, developing new controlling strategies that do not rely on conventional antimicrobial agents is desirable (Kunova et al., 2021). In recent years, new methods of microbial control based on microbial interactions have attracted considerable interest (Pierce et al., 2021). This study may be useful for developing new methods for controlling rice blast with minimal environmental impacts. Furthermore, reports on the ability of competitive microorganisms to promote their growth are very less. To the best of our knowledge, this is the first report that P. oryzae promote the growth of actinomycetes in a non‐contact manner. Therefore, this study is unique in terms of microbial ecology.

The results of this study suggested that the growth of S. griseus was promoted by an increase in the pH of the medium caused by the compounds produced by P. oryzae. Phytopathogenic fungi produce ammonia during growth, and the pH of the environment increases (Fernandes et al., 2017; Landraud et al., 2013; Vylkova, 2017). Therefore, ammonia was considered to be a growth‐inducing factor in the present study. However, ammonia was not detected in the medium in which actinomycete growth was induced by confrontation culture. Therefore, ammonia was not involved in this phenomenon of growth induction. Trimethylamine, a volatile polyamine, produced by Streptomyces venezuelae promotes its own growth by increasing the pH of the medium (Jones et al., 2017; Shepherdson et al., 2023). When cocultured with Saccharomyces cerevisiae, the growth of S. venezuelae is stimulated, and trimethylamine is produced. Therefore, the substance(s) responsible for the growth induction of S. griseus in the present study may be polyamine(s). Trimethylamine has been reported to affect the growth of S. venezuelae in distant locations since it is a volatile compound (Jones et al., 2017). However, in the present study, growth induction was not observed when the medium between P. oryzae and S. griseus was removed, suggesting that the active compounds diffused through the medium without volatilization. Furthermore, it is also reported that the growth of S. griseus is not affected by S. cerevisiae (Jones et al., 2017). These results indicated that the mechanism of growth induction of S. griseus by P. oryzae was different from those in previous reports. Other polyamines, such as spermidine, spermine and putrescine, are produced by P. oryzae (Subba et al., 2022). These polyamines may be responsible for the growth induction of S. griseus.

It was reported that a rise in pH during P. oryzae infection along with ammonia production which correlated with the rise in pH of the liquid medium during growth of this fungus (Landraud et al., 2013). However, to successfully alkalinize and kill plant tissue by ammonia production, fungi must first grow enough hyphal biomass in mildly acidic plant tissue (Fernandes et al., 2017). In addition, in the early stage of infection, P. oryzae grows with biotrophic behaviour (Landraud et al., 2013). P. oryzae may adapt to the ambient environment in plant tissue through neutralization without killing the host plant, as reported in this study.

Both F. oxysporum and C. tenuipes inhabit soil (Sung et al., 2007; Yan et al., 2023). S. griseus is also found primarily in soil (Fischer et al., 2018); therefore, F. oxysporum and C. tenuipes may encounter S. griseus. However, these fungi did not promote the growth of S. griseus. This suggests that the phenomenon is specific to P. oryzae. Notably, P. oryzae is less abundant in soil (Marcel et al., 2010). This led us to propose two possible interaction patterns; either P. oryzae is present in soil or it interacts with S. griseus in rice plants. Because the same phenomenon was observed with P. grisea, S. griseus may be endophytic in Poaceae plants and interact with P. oryzae in rice. Other endophytic Streptomyces spp. in rice plants are useful in controlling blast fungi (Law et al., 2017).

We have previously reported a compound‐mediated competitive relationship between S. griseus and P. oryzae (Furuyama et al., 2021). At first glance, the results of the present study appear to contradict the previous report. This phenomenon may be a competitive response of S. griseus, rather than an active growth induction by P. oryzae. Namely, S. griseus can detect the presence of P. oryzae before contact with P. oryzae and S. griseus grows sufficiently to produce antibiotics. Antibiotics from S. griseus induce the production of secondary metabolites in P. oryzae (Furuyama et al., 2021). S. griseus first produces an antibiotic, and P. oryzae senses it and produces secondary metabolites to counteract S. griseus. Therefore, P. oryzae and S. griseus may share a common niche, possibly in rice plants, and maintain a competitive relationship. S. griseus have potential as a new biocontrol agent for P. oryzae with minimal environmental impacts.

CONCLUSION

S. griseus growth was promoted by P. oryzae owing to the increase in pH of the medium caused by non‐volatile substances produced by P. oryzae. Furthermore, this is the first report of Pyricularia oryzae neutralizing the environment by producing a non‐volatile compound. These results shed light on partial ecology to pH modulation of P. oryzae, which is observed in the biotrophic infection stage, in a laboratory setting.

AUTHOR CONTRIBUTIONS

Risa Sugiura: Writing – original draft; methodology. Takayuki Arazoe: Writing – review and editing. Takayuki Motoyama: Writing – review and editing. Hiroyuki Osada: Writing – review and editing. Takashi Kamakura: Writing – review and editing. Kouji Kuramochi: Writing – review and editing; supervision. Yuuki Furuyama: Writing – review and editing; conceptualization; project administration.

CONFLICT OF INTEREST STATEMENT

The authors declare no conflicts of interest.

ACKNOWLEDGEMENTS

This study was supported by the 50th Research Grant from the Japan Society for Bioscience, Biotechnology, and Agrochemistry. We would like to thank Mr. Yutaka Kai for his help in the early stages of this work.

DATA AVAILABILITY STATEMENT

The data that support the findings of this study are available from the corresponding author upon reasonable request.
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REFERENCES

Ansari, W.A. , Krishna, R. , Zeyad, M.T. , Singh, S. & Yadav, A. (2020) Endophytic actinomycetes‐mediated modulation of defense and systemic resistance confers host plant fitness under biotic stress conditions. In: Singh, R.P. , Manchanda, G. , Maurya, I.K. & Wei, Y. (Eds.) Microbial versatility in varied environments: microbes in sensitive environments., pp. 167–180. Singapore: Springer. Available from: 10.1007/978-981-15-3028-9_10
Dean, R.A. , Talbot, N.J. , Ebbole, D.J. , Farman, M.L. , Mitchell, T.K. , Orbach, M.J. et al. (2005) The genome sequence of the rice blast fungus Magnaporthe grisea . Nature, 434 , 980–986. Available from: 10.1038/nature03449 15846337
Fernandes, T.R. , Segorbe, D. , Prusky, D. & Di Pietro, A. (2017) How alkalinization drives fungal pathogenicity. PLoS Pathogens, 13 , e1006621. Available from: 10.1371/journal.ppat.1006621 29121119
Fischer, J. , Müller, S.Y. , Netzker, T. , Jäger, N. , Gacek‐Matthews, A. , Scherlach, K. et al. (2018) Chromatin mapping identifies BasR, a key regulator of bacteria‐triggered production of fungal secondary metabolites. eLife, 7 , e40969. Available from: 10.7554/eLife.40969 30311911
Furuyama, Y. , Motoyama, T. , Nogawa, T. , Kamakura, T. & Osada, H. (2021) Dihydropyriculol produced by Pyricularia oryzae inhibits the growth of Streptomyces griseus . Bioscience, Biotechnology, and Biochemistry, 85 , 1290–1293. Available from: 10.1093/bbb/zbab021 33784739
Jones, S.E. , Ho, L. , Rees, C.A. , Hill, J.E. , Nodwell, J.R. & Elliot, M.A. (2017) Streptomyces exploration is triggered by fungal interactions and volatile signals. eLife, 6 , e21738. Available from: 10.7554/eLife.21738 28044982
Kunova, A. , Palazzolo, L. , Forlani, F. , Catinella, G. , Musso, L. , Cortesi, P. et al. (2021) Structural investigation and molecular modeling studies of Strobilurin‐based fungicides active against the Rice blast pathogen Pyricularia oryzae . International Journal of Molecular Sciences, 22 , 3731. Available from: 10.3390/ijms22073731 33918510
Landraud, P. , Chuzeville, S. , Billon‐Grande, G. , Poussereau, N. & Bruel, C. (2013) Adaptation to pH and role of PacC in the rice blast fungus Magnaporthe oryzae . PLoS One, 8 , e69236. Available from: 10.1371/journal.pone.0069236 23874922
Law, J.W.‐F. , Ser, H.‐L. , Khan, T.M. , Chuah, L.‐H. , Pusparajah, P. , Chan, K.‐G. et al. (2017) The potential of Streptomyces as biocontrol agents against the rice blast fungus, Magnaporthe oryzae (Pyricularia oryzae). Frontiers in Microbiology, 8 , 3. Available from: 10.3389/fmicb.2017.00003 28144236
Marcel, S. , Sawers, R. , Oakeley, E. , Angliker, H. & Paszkowski, U. (2010) Tissue‐adapted invasion strategies of the Rice blast fungus Magnaporthe oryzae . Plant Cell, 22 , 3177–3187. Available from: 10.1105/tpc.110.078048 20858844
Netzker, T. , Fischer, J. , Weber, J. , Mattern, D.J. , König, C.C. , Valiante, V. et al. (2015) Microbial communication leads to the activation of silent fungal secondary metabolite gene clusters. Frontiers in Microbiology, 6 , 299. Available from: 10.3389/fmicb.2015.00299 25941517
Nishikawa, H. (2023) Simplification of dissolved ammonia measurement by indophenol method. The studies on educational practices, 26 , 1–10. Available from: 10.50841/kyoikujissen.26.0_1
Pierce, E.C. , Morin, M. , Little, J.C. , Liu, R.B. , Tannous, J. , Keller, N.P. et al. (2021) Bacterial–fungal interactions revealed by genome‐wide analysis of bacterial mutant fitness. Nature Microbiology, 6 , 87–102. Available from: 10.1038/s41564-020-00800-z
Pittenger, R.C. & McCoy, E. (1953) Variants of Streptomyces griseus induced by ultraviolet radiations. Journal of Bacteriology, 65 , 56–64. Available from: 10.1128/jb.65.1.56-64.1953 13022630
Rodrigues, M.E. , Gomes, F. & Rodrigues, C.F. (2020) Candida spp./bacteria mixed biofilms. Journal of Fungi, 6 , 5. Available from: 10.3390/jof6010005
Santus, W. , Devlin, J.R. & Behnsen, J. (2021) Crossing kingdoms: how the Mycobiota and fungal‐bacterial interactions impact host health and disease. Infection and Immunity, 89 , e00648–e00720. Available from: 10.1128/iai.00648-20 33526565
Sesma, A. & Osbourn, A.E. (2004) The rice leaf blast pathogen undergoes developmental processes typical of root‐infecting fungi. Nature, 431 , 582–586. Available from: 10.1038/nature02880 15457264
Shepherdson, E.M. , Baglio, C.R. & Elliot, M.A. (2023) Streptomyces behavior and competition in the natural environment. Current Opinion in Microbiology, 71 , 102257. Available from: 10.1016/j.mib.2022.102257 36565538
Stubbendieck, R.M. & Straight, P.D. (2016) Multifaceted interfaces of bacterial competition. Journal of Bacteriology, 198 , 2145–2155. Available from: 10.1128/JB.00275-16 27246570
Subba, P. , Saha, P. , Karthikkeyan, G. , Biswas, M. , Prasad, T.S.K. & Roy‐Barman, S. (2022) Metabolite profiling reveals overexpression of the global regulator, MoLAEA leads to increased synthesis of metabolites in Magnaporthe oryzae . Journal of Applied Microbiology, 132 , 3825–3838. Available from: 10.1111/jam.15518 35261134
Sung, G.H. , Hywel‐Jones, N.L. , Sung, J.M. , Luangsa‐ard, J.J. , Shrestha, B. & Spatafora, J.W. (2007) Phylogenetic classification of cordyceps and the clavicipitaceous fungi. Studies in Mycology, 57 , 5–69. Available from: 10.3114/sim.2007.57.01 18490993
Vylkova, S. (2017) Environmental pH modulation by pathogenic fungi as a strategy to conquer the host. PLoS Pathogens, 13 , e1006149. Available from: 10.1371/journal.ppat.1006149 28231317
Wang, M. , Li, H. , Li, J. , Zhang, W. & Zhang, J. (2024) Streptomyces strains and their metabolites for biocontrol of phytopathogens in agriculture. Journal of Agricultural and Food Chemistry, 72 , 2077–2088. Available from: 10.1021/acs.jafc.3c08265 38230633
Yan, X. , Guo, S. , Gao, K. , Sun, S. , Yin, C. & Tian, Y. (2023) The impact of the soil survival of the pathogen of fusarium wilt on soil nutrient cycling mediated by microorganisms. Microorganisms, 11 , 2207. Available from: 10.3390/microorganisms11092207 37764051
