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Vertical Transmission of RNA Mycoviruses in Lentinula edodes

표고에서의 RNA 바이러스 수직감염

  • Eunjin Kim (Forest Microbiology Division, Department of Forest Bio-Resources, National Institute of Forest Science) ;
  • Mi-Jeong Park (Forest Microbiology Division, Department of Forest Bio-Resources, National Institute of Forest Science) ;
  • Min-Jun Kim (Forest Microbiology Division, Department of Forest Bio-Resources, National Institute of Forest Science) ;
  • Yeun Sug Jeong (Forest Microbiology Division, Department of Forest Bio-Resources, National Institute of Forest Science) ;
  • Yeongseon Jang (Forest Microbiology Division, Department of Forest Bio-Resources, National Institute of Forest Science) ;
  • Kang-Hyeon Ka (Forest Microbiology Division, Department of Forest Bio-Resources, National Institute of Forest Science)
  • 김은진 (국립산림과학원 산림생명자원연구부 산림미생물연구과) ;
  • 박미정 (국립산림과학원 산림생명자원연구부 산림미생물연구과) ;
  • 김민준 (국립산림과학원 산림생명자원연구부 산림미생물연구과) ;
  • 정연석 (국립산림과학원 산림생명자원연구부 산림미생물연구과) ;
  • 장영선 (국립산림과학원 산림생명자원연구부 산림미생물연구과) ;
  • 가강현 (국립산림과학원 산림생명자원연구부 산림미생물연구과)
  • Received : 2022.08.31
  • Accepted : 2022.12.06
  • Published : 2022.12.31

Abstract

Lentinula edodes is an important commercial mushroom and there have been several reports of viral infections in L. edodes. Two mycoviruses (LeV-HKB and LeNSRV1) were detected in Sanbaekhyang (NIFoS 2778) and Taehyanggo (NIFoS 4317), the sawdust-cultivated commercial strains. The vertical transmission rates of the viruses were investigated by detecting the viruses in 80 monokaryotic strains derived from basidiospores isolated from the fruiting bodies of each strain. Most of the monokaryotic strains were infected with the virus and the two viruses showed different levels of meiotic stability, with LeV-HKB showing higher meiotic stability than LeNSRV1. Therefore, it seems that the vertical transmission mechanism of mycoviruses is different depending on the virus species. We also examined the mycelial growth rate of the monokaryotic strains and compared the growth rate according to virus infection status. Although there was no statistically significant correlation between viral infection and mycelial growth rate, we found that the average growth rate was reduced by additional virus infection. We expect our data to contribute to a greater understanding of the mechanism of the vertical transmission of mycoviruses, and promoting breeding using virus-free monokaryotic strains.

표고는 중요한 상업용 버섯이며, 표고에서의 바이러스 감염에 대한 여러 보고가 있었다. 톱밥 재배 품종인 산백향(NIFoS 2778)과 태향고(NIFoS 4317)에 대한 바이러스 검출 결과, 이들이 2개의 mycoviruses (LeV-HKB 및 LeNSRV1)에 감염되어 있음을 확인하였다. 각 품종의 자실체에서 분리된 담자포자에서 유래한 80개의 단핵균사에서 바이러스 감염을 조사한 결과, 대부분의 단 핵균사들이 바이러스에 감염되어 있었으며, LeV-HKB와 LeNSRV1의 수직감염률에 차이가 있었다. LeV-HKB가 LeNSRV1 보다 높은 수직감염률을 나타낸 것이다. 따라서 mycovirus의 수직 감염 기작이 바이러스 종에 따라 다른 것으로 보인다. 다음으로, 담자포자 유래 단핵균사들의 생장속도를 조사하여 바이러스 감염과 생장속도의 상관관계를 조사하였다. 바이러스 감염과 균사 생장속도 사이에 통계적으로 유의한 상관관계가 없었지만, 감염된 바이러스의 종류가 늘어날수록 생장속도가 감소하는 경향을 확인하였다. 본 연구는 mycovirus의 수직 감염 기작을 이해하는 데 기여하고, 바이러스에 감염되지 않은 단핵균사를 이용한 무바이러스 품종 개발을 촉진하는 데 기여할 수 있을 있을 것 기대된다.

Keywords

Acknowledgement

This study was supported by a grant from the General Project (FP0800-2020-01) of National Institute of the Forest Science and the Golden Seed Project of 'Breeding of new strains of shiitake for cultivar protection and substitution of import [213007-05-5-SBH10]' provided by the Ministry of Agriculture, Food and Rural Affairs, Ministry of Oceans and Fisheries, Rural Development Administration and Korea Forest Service.

References

  1. Schisler LC, Sinden JW, Sigel EM. Ethiology, symptomatology, and epidemiology of a virus disease of cultivated mushrooms. Phytopathology 1967;57:519-26.
  2. Hollings M. Viruses associated with a die-back disease of cultivated mushroom. Nature 1962;196:962-5. https://doi.org/10.1038/196962a0
  3. Magae Y, Sunagawa M. Characterization of a mycovirus associated with the brown discoloration of the edible mushroom, Flammulina velutipes. Virol J 2010;7:342.
  4. Ridley SP, Sommer SS, Wickner RB. Superkiller mutations in Saccharomyces cerevisiae suppress exclusion of M2 double-stranded RNA by L-A-HN and confer cold sensitivity in the presence of M and L-A-HN. Mol Cell Biol 1984;4:761-77.
  5. Wang L, He H, Wang SC, Chen XG, Qiu DW, Kondo H, Guo LH. Evidence for a novel negative-stranded RNA mycovirus isolated from the plant pathogenic fungus Fusarium graminearum. Virology 2018;518:232-40. https://doi.org/10.1016/j.virol.2018.03.008
  6. Ghabrial SA, Caston JR, Jiang DH, Nibert ML, Suzuki N. 50-plus years of fungal viruses. Virology 2015;479:356-68.
  7. Ro HS, Lee NJ, Lee CW, Lee HS. Isolation of a novel mycovirus OMIV in Pleurotus ostreatus and its detection using a triple antibody sandwich-ELISA. Virol Methods J 2006;138:24-9. https://doi.org/10.1016/j.jviromet.2006.07.016
  8. Kwon YC, Jeong DW, Gin SI, Ro HS, Lee HS. Curing viruses in Pleurotus ostreatus by growth on a limited nutrient medium containing cAMP and rifamycin. J Virol Methods 2012;185:156-9.
  9. Kim JM, Song HY, Choi HJ, Yun SH, So KK, Ko HK, Kim DH. Changes in the mycovirus (LeV) titer and viral effect on the vegetative growth of the edible mushroom Lentinula edodes. Virus Res 2015;197:8-12. https://doi.org/10.1016/j.virusres.2014.11.016
  10. Song HY, Choi HJ, Jeong H, Choi D, Kim DH, Kim JM. Viral effects of a dsRNA mycovirus (PoV-ASI2792) on the vegetative growth of the edible mushroom Pleurotus ostreatus. Mycobiology 2016;44:283-90. https://doi.org/10.5941/MYCO.2016.44.4.283
  11. Sun Y, Guo M, Wang J, Bian Y, Xu Z. Curing two predominant viruses occurring in Lentinula edodes by chemotherapy and mycelial fragmentation methods. J Virol Methods 2022;300:114370.
  12. Liu J, Wang ZR, Li C, Bian YB, Tiao Y. Evaluating genetic diversity and constructing core collections of Chinese Lentinula edodes cultivars using ISSR and SRAP markers. J Basic Microbiol 2015;55:749-60.
  13. Wang JJ, Guo MP, Sun YJ, Bian YB, Zhou Y, Xu ZY. Genetic variation and phylogenetic analyses reveal transmission clues of Lentinula edodes partitivirus 1 (LePV1) from the Chinese L. edodes core collection. Virus Res 2018;255:127-32. https://doi.org/10.1016/j.virusres.2018.07.012
  14. Ko HK, Choi SK, Kim SC, Kim JH, Lee WH, Roh JH, Lee BS, Kim IY, Kim WS. Cultural techniques of Lentinula edodes. Report of Forest Mushroom Research Center, Korea, 2012.
  15. Magae Y. Characterization of a novel mycovirus in the cultivated mushroom, Lentinula edodes. Virol J 2012;9:60.
  16. Kim J, Yun S, Ko H, Kim D. Occurrence of dsRNA mycovirus (LeV-FMRI0339) in the edible mushroom Lentinula edodes and meiotic stability of LeV-FMRI0339 among monokaryotic progeny. Plant Pathol J 2013;29:460-4. https://doi.org/10.5423/PPJ.NT.03.2013.0037
  17. Kim EJ, Park MJ, Jang YS, Ryoo R, Ka KH. Detection of RNA mycoviruses in wild strains of Lentinula edodes in Korea. Kor J Mycol 2021;49:285-94.
  18. Guo M, Bian Y, Wang J, Wang G, Ma X, Xu Z. Biological and molecular characteristics of a novel partitivirus infecting the edible fungus Lentinula edodes. Plant Dis 2017;101:726-33. https://doi.org/10.1094/PDIS-07-16-0951-RE
  19. Lin YH, Fujita M, Chiba S, Hyodo K, Andika IB, Suzuki N, Kondo H. Two novel fungal negative-strand RNA viruses related to mymonaviruses and phenuiviruses in the shiitake mushroom (Lentinula edodes). Virology 2019;533:125-36. https://doi.org/10.1016/j.virol.2019.05.008
  20. Harmsen MC, van Griensven LJLD, Wessels JGH. Molecular analysis of Agaricus bisporus double stranded RNA. J Gen Virol 1989;79:1613-6.
  21. Ghabrial SA. Origin, adaptation and evolutionary pathways of fungal viruses. Virus Genes 1998;16:119-31.
  22. Ka KH, Ryoo R, Tang Y, Jeong YS, Kang JJ, Heo G, Jeon SM. Characteristics of fruiting bodies formed upon monohybrid cross of Lentinula edodes strains. Kor J Mycol 2019;47:173-9.
  23. Park MJ, Ryoo R, Jang Y, Ka KH. Correlation of A mating type with mycelial growth rate in basidiospore-derived monokaryons of Lentinula edodes. Kor J Mycol 2021;49:487-95.
  24. Yumi MG. Molecular characterization of a novel mycovirus in the cultivated mushroom, Lentinula edodes. Virol J 2012;9:60.
  25. Won HK, Park SJ, Kim DK, Shin MJ, Kim N, Lee SH, Kwon YC, Ko HK, Ro HS, Lee HS. Isolation and characterization of a mycovirus in Lentinula edodes. J Microbiol 2013;51:118-22. https://doi.org/10.1007/s12275-013-2351-2
  26. Guo M, Shen G, Wang J, Liu M, Bian Y, Xu Z. Mycoviral diversity and characteristics of a negative-stranded RNA virus LeNSRV1 in the edible mushroom Lentinula edodes. Virology 2021;555:89-10.