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Research Articles

Notes of Five Wood-Decaying Fungi from Juwangsan National Park in Korea

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Pages 30-41 | Received 12 Jul 2023, Accepted 20 Dec 2023, Published online: 24 Jan 2024

References

  • Lonsdale D, Pautasso M, Holdenrieder O. Wood-decaying fungi in the forest: conservation needs and management options. Eur J Forest Res. 2008;127(1):1–22. doi: 10.1007/s10342-007-0182-6.
  • Blanchette RA. Delignification by wood-decay fungi. Annu Rev Phytopathol. 1991;29(1):381–403. doi: 10.1146/annurev.py.29.090191.002121.
  • Tuor U, Winterhalter K, Fiechter A. Enzymes of white-rot fungi involved in lignin degradation and ecological determinants for wood decay. J Biotechnol. 1995;41(1):1–17. doi: 10.1016/0168-1656(95)00042-O.
  • Gao D, Du L, Yang J, et al. A critical review of the application of white rot fungus to environmental pollution control. Crit Rev Biotechnol. 2010;30(1):70–77. doi: 10.3109/07388550903427272.
  • Hakala TK, Maijala P, Konn J, et al. Evaluation of novel wood-rotting polypores and corticioid fungi for the decay and biopulping of Norway spruce (Picea abies) wood. Enzyme Microb Technol. 2004;34(3–4):255–263. doi: 10.1016/j.enzmictec.2003.10.014.
  • Wasser SP, Weis AL. Medicinal properties of substances occurring in higher basidiomycetes mushrooms: current perspectives. Int J Med Mushrooms. 1999;1(1):31–62. doi: 10.1615/IntJMedMushrooms.v1.i1.30.
  • Hwang S-K, Kim J-H. Topographical landscapes and their controlling geological factors in the Juwangsan National Park: welding facies and columnar joints. J Petrol Soc Korea. 2009;18:195–209.
  • Hur T, Jang S. Distribution of higher fungi in Juwangsan National Park. J Korean Inst Forest Recreat. 2011;15:15–20.
  • Kim Y, Kang G. Floristic study on Juwangsan National Park. Korean J Environ Ecol. 1995;8:81–92.
  • Ko P-Y, Hong K-S, Choe S-Y, et al. Distribution of spontaneously growing mushrooms in the Juwangsan National Park. J Mushroom. 2018;16:65–69.
  • Hyde KD, Abd-Elsalam K, Cai L. Morphology: still essential in a molecular world. Mycotaxon. 2011;114(1):439–451. doi: 10.5248/114.439.
  • Lutzoni F, Kauff F, Cox CJ, et al. Assembling the fungal tree of life: progress, classification, and evolution of subcellular traits. Am J Bot. 2004;91(10):1446–1480. doi: 10.3732/ajb.91.10.1446.
  • Raja HA, Miller AN, Pearce CJ, et al. Fungal identification using molecular tools: a primer for the Natural Products Research Community. J Nat Prod. 2017;80(3):756–770. doi: 10.1021/acs.jnatprod.6b01085.
  • Kwon SL, Jang S, Kim C, et al. Note of five unrecorded mushrooms including three rare species on Mount Juwang in Korea. Mycobiology. 2020;48(3):157–168. doi: 10.1080/12298093.2020.1759348.
  • White TJ, Bruns T, Lee S, et al. Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics. In: Innis MA, Gelfand DH, Sninsky JJ, et al. editors PCR protocols: a guide to methods and applications. New York (NY): Academic Press; 1990. p. 315–322.
  • Gardes M, Bruns TD. ITS primers with enhanced specificity for basidiomycetes—application to the identification of mycorrhizae and rusts. Mol Ecol. 1993;2(2):113–118. doi: 10.1111/j.1365-294x.1993.tb00005.x.
  • Vilgalys R, Hester M. Rapid genetic identification and mapping of enzymatically amplified ribosomal DNA from several Cryptococcus species. J Bacteriol. 1990;172(8):4238–4246. doi: 10.1128/jb.172.8.4238-4246.1990.
  • Hopple JSJr., Vilgalys R. Phylogenetic relationships among coprinoid taxa and allies based on data from restriction site mapping of nuclear rDNA. Mycologia. 1994;86(1):96–107. doi: 10.1080/00275514.1994.12026378.
  • Katoh K, Standley DM. MAFFT multiple sequence alignment software version 7: improvements in performance and usability. Mol Biol Evol. 2013;30(4):772–780. doi: 10.1093/molbev/mst010.
  • Stamatakis A. RAxML version 8: a tool for phylogenetic analysis and post-analysis of large phylogenies. Bioinformatics. 2014;30(9):1312–1313. doi: 10.1093/bioinformatics/btu033.
  • Miller MA, Pfeiffer W, Schwartz T. Creating the CIPRES Science Gateway for inference of large phylogenetic trees. Proceedings of the Gateway Computing Envi­ronments Workshop (GCE) New Orleans (Lousiana): Institute of Electrical and Electronics Engineers (IEEE); 2010. p. 1–8.
  • Color BM. Munsell soil-color charts with genuine Munsell® color chips. Grand Rapids (MI): Munsell Color; 2009.
  • Li Y, Nie T, Nakasone KK, et al. Taxonomy and phylogeny of corticioid fungi in Auriculariaceae (Auriculariales, Basidiomycota): a new genus, five new species and four new combinations. J Fungi. 2023;9(3):318. doi: 10.3390/jof9030318.
  • Wang H, Wang D-Q, Zhao C-L. Eichleriella aculeobasidiata sp. nov. (Auriculariales, Basidiomycota) evidenced by morphological characters and phylogenetic analyses in China. Kew Bull. 2022;77(1):325–332. doi: 10.1007/s12225-022-10001-y.
  • Roberts P. Caribbean heterobasidiomycetes: 3. British Virgin Islands. Mycotaxon. 2008;105:137–147.
  • Defigio DA. A taxonomic analysis of the corticate species of the genus Hymenochaete [Ph.D. dissertation]. Illinois State University; 1970.
  • He S-H, Dai Y-C. Taxonomy and phylogeny of Hymenochaete and allied genera of Hymenochaetaceae (Basidiomycota) in China. Fung Divers. 2012;56(1):77–93. doi: 10.1007/s13225-012-0174-9.
  • Jang S, Kim C, Kim G, et al. Diversity of basidiomycetous fungi in Mt. Yeonin Provincial Park. Korean J Nat Conserv. 2016;15(1):41–53. doi: 10.30960/kjnc.2016.15.1.41.
  • Jang Y, Jang S, Lee J, et al. Diversity of wood-inhabiting polyporoid and corticioid fungi in Odaesan National Park, Korea. Mycobiology. 2016;44(4):217–236. doi: 10.5941/MYCO.2016.44.4.217.
  • Nilsson RH, Hallenberg N, Nordén B, et al. Phylogeography of Hyphoderma setigerum (Basidiomycota) in the Northern hemisphere. Mycol Res. 2003;107(Pt 6):645–652. doi: 10.1017/s0953756203007925.
  • Yurchenko E, Wu S-H. Hyphoderma pinicola sp. nov. of H. setigerum complex (Basidiomycota) from Yunnan, China. Bot Stud. 2014;55(1):71. doi: 10.1186/s40529-014-0071-5.
  • Wu S-H. New species of Hyphoderma from Taiwan. Mycologia. 1997;89(1):132–140. doi: 10.1080/00275514.1997.12026764.
  • Eriksson J, Ryvarden L. The Corticiaceae of North Europe volume 3, Coronicium-Hyphoderma. Fungiflora Oslo. 1975;3:287–546.
  • Yurchenko EO, Zmitrovich IV. Variability of Hyphoderma setigerum (Corticiaceae s.l., Basidiomycetes) in Belarus and Northwest Russia. Mycotaxon. 2001;78:423–434.
  • Yurchenko E, Riebesehl J, Langer E. Clarification of Lyomyces sambuci complex with the descriptions of four new species. Mycol Progress. 2017;16(9):865–876. doi: 10.1007/s11557-017-1321-1.
  • Chen J-Z, Zhao C-L. Morphological and molecular identification of four new resupinate species of Lyomyces (Hymenochaetales) from Southern China. MycoKeys. 2020;65:101–118. doi: 10.3897/mycokeys.65.48660.
  • Chen J, Cui B, Dai Y. Global diversity and molecular systematics of Wrightoporia s.l. (Russulales, Basidiomycota). Persoonia. 2016;37(1):21–36. doi: 10.3767/003158516X689666.
  • Vizzini A, Angelini C, Losi C, et al. Diversity of polypores in the Dominican Republic: Pseudowrightoporia dominicana sp. nov. (Hericiaceae, Russulales). MycoKeys. 2018;34(34):35–45. doi: 10.3897/mycokeys.34.25371.
  • Nunez M, Ryvarden L. New and interesting polypores from Japan. Fung Divers. 1999;3:107–121.
  • Cui B-K, Dai Y-C. Wrightoporia (Basidiomycota, Aphyllophorales) in China. Nova Hedwigia. 2006;83(1–2):159–166. doi: 10.1127/0029-5035/2006/0083-0159.
  • Bernicchia A, Gorjón S. Fungi Europaei 12: Corticiaceae s.l. Lomazzo: Edizioni Candusso; 2010. p. 1–1007.
  • Dai Y-C. A revised checklist of corticioid and hydnoid fungi in China for 2010. Mycoscience. 2011;52(1):69–79. doi: 10.1007/S10267-010-0068-1.
  • Cui B-K, Li H-J, Ji X, et al. Species diversity, taxonomy and phylogeny of Polyporaceae (Basidiomycota) in China. Fung Divers. 2019;97(1):137–392. doi: 10.1007/s13225-019-00427-4.
  • Westphalen MC, Motato-Vásquez V, Tomšovský M, et al. Additions to the knowledge of hydnoid Steccherinaceae: Cabalodontia, Etheirodon, Metuloidea, and Steccherinum. Mycologia. 2021;113(4):791–806. doi: 10.1080/00275514.2021.1894536.
  • Wu F, Man X, Tohtirjap A, et al. A comparison of polypore funga and species composition in Forest ecosystems of China, North America, and Europe. Forest Ecosyst. 2022;9:100051. doi: 10.1016/j.fecs.2022.100051.
  • Wu F, Zhou L-W, Vlasák J, et al. Global diversity and systematics of Hymenochaetaceae with poroid hymenophore. Fung Divers. 2022;113(1):1–192. doi: 10.1007/s13225-021-00496-4.
  • Luo K-Y, Zhao C-L. Morphology and multigene phylogeny reveal a new order and a new species of wood-inhabiting basidiomycete fungi (Agaricomycetes). Front Microbiol. 2022;13:970731. doi: 10.3389/fmicb.2022.970731.
  • Malysheva V, Spirin V. Taxonomy and phylogeny of the Auriculariales (Agaricomycetes, Basidiomycota) with stereoid basidiocarps. Fungal Biol. 2017;121(8):689–715. doi: 10.1016/j.funbio.2017.05.001.
  • Bresadola G. Fungi polonici a cl. Viro B. Eichler lecti: Hayn. Ann Mycol. 1903;1:65–96.
  • Liu X, Shen S, Zhao C. Morphological and molecular identification of a new species of Eichleriella (Auriculariales, Basidiomycota) in China. Phytotaxa. 2019;404(6):245–254. doi: 10.11646/phytotaxa.404.6.3.
  • Wei M, Oberwinkler F. Phylogenetic relationships in Auriculariales and related groups – hypotheses derived from nuclear ribosomal DNA sequences. Mycol Res. 2001;105(4):403–415. doi: 10.1017/S095375620100363X.
  • Miettinen O, Larsson K-H, Spirin V. Hydnoporia, an older name for Pseudochaete and Hymenochaetopsis, and typification of the genus Hymenochaete (Hymenochaetales, Basidiomycota). Fungal Syst Evol. 2019;4:77–96. doi: 10.3114/fuse.2019.04.07.
  • Dai Y-C. Hymenochaetaceae (Basidiomycota) in China. Fung Divers. 2010;45(1):131–343. doi: 10.1007/s13225-010-0066-9.
  • Parmasto E. The genus Hymenochaete (Hymenomycetes): infrageneric classification and satellite genera. Doc Mycol. 1995;25:305–315.
  • Parmasto E. Hymenochaetoid fungi (Basidiomycota) of North America. Mycotaxon. 2001;79:107–176.
  • Wallroth KFW. Flora cryptogamica Germaniae: Algas et fungos. 2. Norimbergae: Schragius; 1833.
  • Guan Q-X, Li Y-F, Zhao C-L. Morphological and phylogenetic evidence for recognition of two new species of Hyphoderma (Basidiomycota) from Southern China, with a key to all Chinese Hyphoderma. MycoKeys. 2021;83:145–160. doi: 10.3897/mycokeys.83.69909.
  • Guan Q-X, Zhao C-L. Taxonomy and phylogeny of the wood-inhabiting fungal genus Hyphoderma with descriptions of three new species from East Asia. J Fungi. 2021;7(4):308. doi: 10.3390/jof7040308.
  • Larsson K-H. Re-thinking the classification of corticioid fungi. Mycol Res. 2007;111(Pt 9):1040–1063. doi: 10.1016/j.mycres.2007.08.001.
  • Justo A, Miettinen O, Floudas D, et al. A revised family-level classification of the Polyporales (Basidiomycota). Fungal Biol. 2017;121(9):798–824. doi: 10.1016/j.funbio.2017.05.010.
  • Larsson KH. Two new species in Hyphoderma. Nord J Bot. 1998;18(1):121–127. doi: 10.1111/j.1756-1051.1998.tb01106.x.
  • Ma X, Huang R-X, Zhang Y, et al. Hyphoderma fissuratum and H. mopanshanense spp. nov. (Polyporales) from Southern China. Mycoscience. 2021;62(1):36–41. doi: 10.47371/mycosci.2020.08.004.
  • Hjortstam K, Ryvarden L. A checklist of names in Hyphodontia sensu stricto-sensu lato and Schizopora with new combinations in Lagarobasidium, Lyomyces, Kneiffiella, Schizopora, and Xylodon. Synopsis fungorum. 2009;26:33–55.
  • Riebesehl J, Langer E. Hyphodontia s.l. (Hymenochaetales, Basidiomycota): 35 new combinations and new keys to all 120 current species. Mycol Progress. 2017;16(6):637–666. doi: 10.1007/s11557-017-1299-8.
  • Karsten P. Enumeratio Thelephorearum Fr. et Clavariearum Fr. Fennicarum, systemate novo dispositarum. Rev Mycol Toulouse. 1881;3:21–23.
  • Bernicchia A, Gorjón S. Fungi Europaei 12: Corticiaceae s.l. Alassio: Edizioni Candusso; 2010. p. 731–744.
  • Eriksson J. Studies in the heterobasidiomycetes and homobasidiomycetes—Aphyllophorales of Muddus National Park in North Sweden. Uppsala: Acta Universitatis Upsaliensis; 1958.
  • Viner I, Spirin V, Zíbarová L, et al. Additions to the taxonomy of Lagarobasidium and Xylodon (Hymenochaetales, Basidiomycota). MycoKeys. 2018;41(41):65–90. doi: 10.3897/mycokeys.41.28987.
  • Riebesehl J, Yurchenko E, Nakasone KK, et al. Phylogenetic and morphological studies in Xylodon (Hymenochaetales, Basidiomycota) with the addition of four new species. MycoKeys. 2019;47:97–137. doi: 10.3897/mycokeys.47.31130.
  • Cho Y, Kim JS, Dai Y-C, et al. Taxonomic evaluation of Xylodon (Hymenochaetales, Basidiomycota) in Korea and sequence verification of the corresponding species in GenBank. PeerJ. 2021;9:e12625. doi: 10.7717/peerj.12625.
  • Luo K-Y, Chen Z-Y, Zhao C-L. Phylogenetic and taxonomic analyses of three new wood-inhabiting fungi of Xylodon (Basidiomycota) in a Forest ecological system. J Fungi. 2022;8(4):405. doi: 10.3390/jof8040405.
  • Dong J-H, Zhang X-C, Chen J-J, et al. A phylogenetic and taxonomic study on Steccherinum (Polyporales, Basidiomycota): focusing on three new Steccherinum species from Southern China. Front Cell Infect Microbiol. 2022;12:1103579. doi: 10.3389/fcimb.2022.1103579.
  • Westphalen M, Rajchenberg M, Tomšovský M, et al. A re-evaluation of Neotropical Junghuhnia s.lat. (Polyporales, Basidiomycota) based on morphological and multigene analyses. Persoonia. 2018;41(1):130–141. doi: 10.3767/persoonia.2018.41.07.