References
- Sung GH, Hywel-Jones NL, Sung JM, Luangsa-Ard JJ, Shrestha B, Spatafora JW. 2007. Phylogenetic classification of Cordyceps and the clavicipitaceous fungi. Stud. Mycol. 57: 5-59. https://doi.org/10.3114/sim.2007.57.01
- Shrestha B, Zhang W, Zhang Y, Liu X. 2012. The medicinal fungus Cordyceps militaris: research and development. Mycol. Prog. 11: 599-614. https://doi.org/10.1007/s11557-012-0825-y
- Spatafora JW, Sung GH, Sung JM, Hywel-Jones NL, White JF Jr. 2007. Phylogenetic evidence for an animal pathogen origin of ergot and the grass endophytes. Mol. Ecol. 16: 1701-1711. https://doi.org/10.1111/j.1365-294X.2007.03225.x
- Liu Y, Wang J, Wang W, Zhang H, Zhang X, Han C. 2015. The chemical constituents and pharmacological actions of Cordyceps sinensis. Evid. Based Complement. Alternat. Med. 2015: 575063.
- Hur H. 2008. Chemical ingredients of Cordyceps militaris. Mycobiology 36: 233-235. https://doi.org/10.4489/MYCO.2008.36.4.233
- Lin Q, Long L, Wu L, Zhang F, Wu S, Zhang W, Sun X. 2016. Evaluation of different agricultural wastes for the production of fruiting bodies and bioactive compounds by medicinal mushroom Cordyceps militaris. J. Sci. Food Agric. DOI: 10.1002/jsfa.8097.
- Zhou X, Cai G, He Y, Tong G. 2016. Separation of cordycepin from Cordyceps militaris fermentation supernatant using preparative HPLC and evaluation of its antibacterial activity as an NAD+-dependent DNA ligase inhibitor. Exp. Ther. Med. 12: 1812-1816. https://doi.org/10.3892/etm.2016.3536
- Ahn YJ, Park SJ, Lee SG, Shin SC, Choi DH. 2000. Cordycepin: selective growth inhibitor derived from liquid culture of Cordyceps militaris against Clostridium spp. J. Agric. Food Chem. 48: 2744-2748. https://doi.org/10.1021/jf990862n
- Muller WE, Weiler BE, Charubala R, Pfleiderer W, Leserman L, Sobol RW, et al. 1991. Cordycepin analogues of 2',5'- oligoadenylate inhibit human immunodeficiency virus infection via inhibition of reverse transcriptase. Biochemistry 30: 2027-2033. https://doi.org/10.1021/bi00222a004
- Ramesh T, Yoo SK, Kim SW, Hwang SY, Sohn SH, Kim IW, Kim SK. 2012. Cordycepin (3'-deoxyadenosine) attenuates age-related oxidative stress and ameliorates antioxidant capacity in rats. Exp. Gerontol. 47: 979-987. https://doi.org/10.1016/j.exger.2012.09.003
- Tian X, Li Y, Shen Y, Li Q, Wang Q, Feng L. 2015. Apoptosis and inhibition of proliferation of cancer cells induced by cordycepin. Oncol. Lett. 10: 595-599. https://doi.org/10.3892/ol.2015.3273
- Xiang L, Li Y, Zhu Y, Luo H, Li C, Xu X, et al. 2014. Transcriptome analysis of the Ophiocordyceps sinensis fruiting body reveals putative genes involved in fruiting body development and cordycepin biosynthesis. Genomics 103: 154-159. https://doi.org/10.1016/j.ygeno.2014.01.002
- Das SK, Masuda M, Hatashita M, Sakurai A, Sakakibara M. 2008. A new approach for improving cordycepin productivity in surface liquid culture of Cordyceps militaris using high-energy ion beam irradiation. Lett. Appl. Microbiol. 47: 534-538. https://doi.org/10.1111/j.1472-765X.2008.02456.x
- Wen TC, Li GR, Kang JC, Kang C, Hyde KD. 2014. Optimization of solid-state fermentation for fruiting body growth and cordycepin production by Cordyceps militaris. Chiang Mai J. Sci. 41: 858-872.
- Shrestha B, Han SK, Sung JM, Sung GH. 2012. Fruiting body formation of Cordyceps militaris from multi-ascospore isolates and their single ascospore progeny strains. Mycobiology 40: 100-106. https://doi.org/10.5941/MYCO.2012.40.2.100
- Shrestha B, Han SK, Yoon KS, Sung JM. 2005. Morphological characteristics of conidiogenesis in Cordyceps militaris. Mycobiology 33: 69-76. https://doi.org/10.4489/MYCO.2005.33.2.069
- Shrestha B, Kim H-K, Sung G-H, Spatafora JW, Sung J-M. 2004. Bipolar heterothallism, a principal mating system of Cordyceps militaris in vitro. Biotechnol. Bioprocess Eng. 9: 440-446. https://doi.org/10.1007/BF02933483
- Yokoyama E, Arakawa M, Yamagishi K, Hara A. 2006. Phylogenetic and structural analyses of the mating-type loci in Clavicipitaceae. FEMS Microbiol. Lett. 264: 182-191. https://doi.org/10.1111/j.1574-6968.2006.00447.x
- Zheng P, Xia Y, Xiao G, Xiong C, Hu X, Zhang S, et al. 2011. Genome sequence of the insect pathogenic fungus Cordyceps militaris, a valued traditional Chinese medicine. Genome Biol. 12: R116. https://doi.org/10.1186/gb-2011-12-11-r116
- Ait Benkhali J, Coppin E, Brun S, Peraza-Reyes L, Martin T, Dixelius C, et al. 2013. A network of HMG-box transcription factors regulates sexual cycle in the fungus Podospora anserina. PLoS Genet. 9: e1003642. https://doi.org/10.1371/journal.pgen.1003642
- Wang H, Wei J, Lin N, Feng A, Chen M, Bao D. 2010. Distribution of mating-type genes in fruiting and nonfruiting forms of Cordyceps militaris. Acta Edulis Fungi 17: 1-4.
- Jones SK Jr. Bennett RJ. 2011. Fungal mating pheromones: choreographing the dating game. Fungal Genet. Biol. 48: 668-676. https://doi.org/10.1016/j.fgb.2011.04.001
- Doyle J. 1991. DNA protocols for plants, pp. 283-293. In Godfrey MH, Andrew WB, Johnson J, Peter WY (eds.), Techniques in Taxonomy. Springer-Verlag, Berlin-Heidelberg. Germany.
- Park J-E, Kim G-Y, Park H-S, Nam B-H, An W-G, Cha J-H, et al. 2001. Phylogenetic analysis of caterpillar fungi by comparing ITS1-5.8S-ITS2 ribosomal DNA sequences. Mycobiology 29: 121-131. https://doi.org/10.1080/12298093.2001.12015773
- Choi Y-W, Hyde KD, Ho W. 1999. Single spore isolation of fungi. Fungal Divers. 3: 29-38
- Kang H-W, Park D-S, Go S-J, Eun M-Y. 2002. Fingerprinting of diverse genomes using PCR with universal rice primers generated from repetitive sequence of Korean weedy rice. Mol. Cells 13: 281-287.
- Shrestha B, Park Y-J, Han S-K, Choi S-K, Sung J-M. 2004. Instability in in vitro fruiting of Cordyceps militaris. J. Mushroom Sci. Prod. 2: 140-144.
- Lu Y, Xia Y, Luo F, Dong C, Wang C. 2016. Functional convergence and divergence of mating-type genes fulfilling in Cordyceps militaris. Fungal Genet. Biol. 88: 35-43. https://doi.org/10.1016/j.fgb.2016.01.013
- Poggeler S, Nowrousian M, Ringelberg C, Loros JJ, Dunlap JC, Kuck U. 2006. Microarray and real-time PCR analyses reveal mating type-dependent gene expression in a homothallic fungus. Mol. Genet. Genomics 275: 492-503. https://doi.org/10.1007/s00438-006-0107-y
- Zheng ZL, Qiu XH, Han RC. 2015. Identification of the genes involved in the fruiting body production and cordycepin formation of Cordyceps militaris fungus. Mycobiology 43: 37-42. https://doi.org/10.5941/MYCO.2015.43.1.37
- Guo M, Guo S, Huaijun Y, Bu N, Dong CH. 2016. Comparison of major bioactive compounds of the caterpillar medicinal mushroom, Cordyceps militaris (ascomycetes), fruiting bodies cultured on wheat substrate and pupae. Int. J. Med. Mushrooms 18: 327-336. https://doi.org/10.1615/IntJMedMushrooms.v18.i4.60
- Cho S-M, Park H-J, Seo G-S, Hong J-D. 2009. Effect of media composition on the cordycepin and content nutritional components of Cordyceps militaris. Kor. J. Mycol. 37: 161-166. https://doi.org/10.4489/KJM.2009.37.2.161
- Wen T-C, Kang J-C, Hyde KD, Li G-R, Kang C, Chen X. 2014. Phenotypic marking of Cordyceps militaris fruitingbodies and their cordycepin production. Chiang Mai J. Sci. 41: 846-857.
- Masuda M, Urabe E, Honda H, Sakurai A, Sakakibara M. 2007. Enhanced production of cordycepin by surface culture using the medicinal mushroom Cordyceps militaris. Enzyme Microb. Technol. 40: 1199-1205. https://doi.org/10.1016/j.enzmictec.2006.09.008
Cited by
- Heat and light stresses affect metabolite production in the fruit body of the medicinal mushroom Cordyceps militaris vol.102, pp.10, 2018, https://doi.org/10.1007/s00253-018-8899-3
- Advances in research on Cordyceps militaris degeneration vol.103, pp.19, 2017, https://doi.org/10.1007/s00253-019-10074-z
- FDY003의 항산화활성 및 표준화 연구 vol.40, pp.6, 2019, https://doi.org/10.22246/jikm.2019.40.6.1112
- Biomass and Cordycepin Production by the Medicinal Mushroom Cordyceps militaris-A Review of Various Aspects and Recent Trends towards the Exploitation of a Valuable Fungus vol.7, pp.11, 2017, https://doi.org/10.3390/jof7110986