Molecular Systematics and Taxonomic Analyses of Three New Wood-Inhabiting Fungi of Hyphoderma (Hyphodermataceae, Basidiomycota)
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Collection and Herbarium Specimen Preparation
2.2. Morphology
2.3. DNA Extraction and Sequencing
2.4. Phylogenetic Analyses
3. Results
3.1. Molecular Phylogeny
3.2. Taxonomy
4. Discussion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Tedersoo, L.; Bahram, M.; Põlme, S.; Kõljalg, U.; Yorou, N.S.; Wijesundera, R.; Ruiz, L.V.; Vasco-Palacios, A.M.; Thu, P.Q.; Suija, A.; et al. Global diversity and geography of soil fungi. Science 2014, 346, 1256688. [Google Scholar] [CrossRef] [PubMed]
- James, T.Y.; Stajich, J.E.; Hittinger, C.T.; Rokas, A. Toward a fully resolved fungal tree of life. Annu. Rev. Microbiol. 2020, 74, 291–313. [Google Scholar] [CrossRef] [PubMed]
- Wijayawardene, N.; Hyde, K.D.; Dai, D.; Sánchez-García, M.; Goto, B.; Saxena, R.; Erdoğdu, M. Outline of Fungi and fungus-like taxa-2021. Mycosphere 2022, 13, 53–453. [Google Scholar] [CrossRef]
- Yurchenko, E.; Wu, S.H. Hyphoderma moniliforme and H. nemorale (Basidiomycota) newly recorded from China. Mycosphere 2015, 6, 113–121. [Google Scholar] [CrossRef]
- Bernicchia, A.; Gorjón, S.P. Fungi Europaei 12: Corticiaceae s.l.; Edizioni Candusso: Salamanca, Spain, 2010; pp. 1–1007. [Google Scholar]
- Wu, S.H.; Nilsson, H.R.; Chen, C.T.; Yu, S.Y.; Hallenberg, N. The white-rotting genus Phanerochaete is polyphyletic and distributed throughout the phleboid clade of the Polyporales (Basidiomycota). Fungal Divers. 2010, 42, 107–118. [Google Scholar] [CrossRef]
- Baltazar, J.M.; Silveira, R.M.B.; Rajchenberg, M. Type studies of J. Rick’s corticioid homobasidiomycetes (Agaricomycetes, Basidiomycota) housed in the Herbarium Anchieta (PACA). Phytotaxa 2016, 255, 101–132. [Google Scholar] [CrossRef]
- Martín, M.P.; Zhang, L.F.; Fernández-López, J.; Dueñas, M.; Rodríguez-Armas, J.L.; Beltrán-Tejera, E.; Telleria, M.T. Hyphoderma paramacaronesicum sp. nov. (Meruliaceae, Polyporales, Basidiomycota), a cryptic lineage to H. macaronesicum. Fungal Syst. Evol. 2018, 2, 57–68. [Google Scholar] [CrossRef]
- Ma, X.; Huang, R.X.; Zhang, Y.; Zhao, C.L. Hyphoderma fissuratum and H. mopanshanense spp. nov. (Polyporales) from southern China. Mycoscience 2021, 62, 36–41. [Google Scholar] [CrossRef]
- 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, 308. [Google Scholar] [CrossRef]
- Guan, Q.X.; Zhao, C.L. Two new corticioid species: Hyphoderma sinense and H. floccosum spp. nov. (Hyphodermataceae, Polyporales) from southern China. Mycosystema 2021, 40, 447–461. [Google Scholar] [CrossRef]
- 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. [Google Scholar] [CrossRef] [PubMed]
- Duan, Z.Y.; Guan, Q.X.; Luo, K.Y.; Zhao, C.L. Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia. Phytotaxa 2023, 599, 1–19. [Google Scholar] [CrossRef]
- Langer, E. Phylogeny of Non-Gilled and Gilled Basidiomycetes: DNA Sequence Inference, Ultrastructure and Comparative Morphology; Habilitationsschrift, Universität Tübingen: Tübingen, Germany, 2002. [Google Scholar]
- Larsson, K.H. Re-thinking the classification of corticioid fungi. Mycol. Res. 2007, 111, 1040–1063. [Google Scholar] [CrossRef] [PubMed]
- Telleria, M.T.; Dueñas, M.; Beltrán-Tejera, E.; Rodríguez-Armas, J.L.; Martín, M.P. A new species of Hyphoderma (Meruliaceae, Polyporales) and its discrimination from closely related taxa. Mycologia 2012, 104, 1121–1132. [Google Scholar] [CrossRef]
- Yurchenko, E.; Wu, S.H. Hyphoderma pinicola sp. nov. of H. setigerum complex (Basidiomycota) from Yunnan, China. Bot. Stud. 2014, 55, 71–78. [Google Scholar] [CrossRef] [PubMed]
- Justo, A.; Miettinen, O.; Floudas, D.; Ortiz-Santana, B.; Sjökvist, E.; Lindner, D.; Nakasone, K.; Niemelä, T.; Larsson, K.-H.; Ryvarden, L.; et al. A revised family-level classification of the Polyporales (Basidiomycota). Fungal Biol. 2017, 121, 798–824. [Google Scholar] [CrossRef]
- Petersen, J.H. Farvekort. The Danish Mycological Society’s Colour-Chart; Foreningen til Svampekundskabens Fremme: Greve, Denmark, 1996; pp. 1–6. [Google Scholar]
- Dai, Y.C.; Cui, B.K.; Si, J.; He, S.H.; Hyde, K.D.; Yuan, H.S.; Liu, X.Y. Dynamics of the worldwide number of fungi with emphasis on fungal diversity in China. Mycol. Prog. 2015, 14, 62. [Google Scholar] [CrossRef]
- White, T.J.; Bruns, T.; Lee, S.; Taylor, J. Amplification and Direct Sequencing of Fungal Ribosomal RNA Genes for Phylogenetics. In PCR Protocols: A Guide to Methods and Applications; Innis, M.A., Gelfand, D.H., Sninsky, J.J., White, T.J., Eds.; Academic Press: San Diego, CA, USA, 1990. [Google Scholar]
- Vilgalys, R.; Hester, M. Rapid genetic identification and mapping of enzymatically amplified ribosomal DNA from several Cryptococcus species. J. Bacteriol. 1990, 172, 4238–4246. [Google Scholar] [CrossRef]
- Matheny, P.B.; Liu, Y.J.; Ammirati, J.F.; Hallet, B.D. Using RPBI sequences to improve phylogenetic inference among mushrooms (Inocybe, Agaricales). Am. J. Bot. 2002, 89, 688–698. [Google Scholar] [CrossRef]
- Matheny, P.B. Improving phylogenetic inference of mushrooms with RPB1 and RPB2 nucleotide sequences (Inocybe, Agaricales). Mol. Phylogenet. Evol. 2005, 35, 1–20. [Google Scholar] [CrossRef]
- Vu, D.; Groenewald, M.; Vries, M.; Gehrmann, T.; Stielow, B.; Eberhardt, U.; Al-Hatmi, A.; Groenewald, J.Z.; Cardinali, G.; Houbraken, J.; et al. Large-scale generation and analysis of filamentous fungal DNA barcodes boosts coverage for kingdom Fungi and reveals thresholds for fungal species and higher taxon delimitation. Stud. Mycol. 2019, 92, 135–154. [Google Scholar] [CrossRef] [PubMed]
- Floudas, D.; Hibbett, D.S. Revisiting the taxonomy of Phanerochaete (Polyporales, Basidiomycota) using a four gene dataset and extensive ITS sampling. Fungal Biol. 2015, 119, 679–719. [Google Scholar] [CrossRef] [PubMed]
- Nilsson, R.H.; Hallenberg, N.; Nordén, B.; Maekawa, N.; Wu, S.H. Phylogeography of Hyphoderma setigerum (Basidiomycota) in the Northern Hemisphere. Mycol. Res. 2003, 107, 645–652. [Google Scholar] [CrossRef] [PubMed]
- Katoh, K.; Rozewicki, J.; Yamada, K.D. MAFFT online service: Multiple sequence alignment, interactive sequence choice and visualization. Brief. Bioinform. 2019, 20, 1160–1166. [Google Scholar] [CrossRef] [PubMed]
- Larsson, A. AliView: A fast and lightweight alignment viewer and editor for large data sets. Bioinformatics 2014, 30, 3276–3278. [Google Scholar] [CrossRef] [PubMed]
- Zhao, C.L.; Wu, Z.Q. Ceriporiopsis kunmingensis sp. nov. (Polyporales, Basidiomycota) evidenced by morphological characters and phylogenetic analysis. Mycol. Prog. 2017, 16, 93–100. [Google Scholar] [CrossRef]
- Swofford, D.L. PAUP*: Phylogenetic Analysis Using Parsimony (*and Other Methods); Version 4.0b10; Sinauer Associates: Sunderland, MA, USA, 2002. [Google Scholar]
- Felsenstein, J. Confidence intervals on phylogenetics: An approach using bootstrap. Evolution 1985, 39, 783–791. [Google Scholar] [CrossRef]
- Miller, M.A.; Pfeiffer, W.; Schwartz, T. The CIPRES Science Gateway: Enabling High-Impact Science for Phylogenetics Researchers with Limited Resources. Assoc. Comput. Mach. 2012, 39, 1–8. [Google Scholar] [CrossRef]
- Nylander, J.A.A. MrModeltest v2; Program Distributed by the Author; Evolutionary Biology Centre, Uppsala University: Uppsala, Sweden, 2004. [Google Scholar]
- Ronquist, F.; Huelsenbeck, J.P. MRBAYES 3: Bayesian phylogenetic inference under mixed models. Bioinformatics 2003, 19, 1572–1574. [Google Scholar] [CrossRef]
- Eriksson, J.; Ryvarden, L. The Corticiaceae of North Europe; Fungiflora: Oslo, Norway, 1975; Volume 3, pp. 288–546. [Google Scholar]
- Wu, S.H. New species of Hyphoderma from Taiwan. Mycologia 1997, 89, 132–140. [Google Scholar] [CrossRef]
- Parmasto, E. Conspectus Systematis Corticiacearum; Institutum Zoologicum et Botanicum Academiae Scientiarum RPSS Estonicae: Tartu, Estonia, 1968. [Google Scholar]
- Jülich, W. The genera of the Hyphodermoideae (Corticiaceae). Persoonia 1974, 8, 59–97. [Google Scholar]
- Tellería, M.T. Annotated list of the Corticiaceae, sensu lato (Aphyllophorales, Basidiomycotina), for Peninsular Spain and Balearic Islands. In Bibliotheca Mycologica; Schweizerbart Science Publishers: Stuttgart, Germany, 1990; Volume 135, pp. 1–152. [Google Scholar]
- Donk, M.A. Notes on resupinate Hymenomycetes IV. Fungus 1957, 27, 1–29. [Google Scholar]
- Gilbertson, R.L.; Blackwell, M. Some new or unusual corticioid fungi from the Gulf Coast region. Mycotaxon 1988, 33, 375–386. [Google Scholar]
- Boidin, J.; Gilles, G. Basidiomycètes Aphyllophorales de l’Île de La Réunion. XVI. Les genres Hyphoderma, Hyphodermopsis, Chrysoderma nov. gen. et Crustoderma. Cryptogam. Mycol. 1991, 12, 97–132. [Google Scholar]
- Eriksson, J. Studies in the Heterobasidiomycetes and Homobasidiomycetes—Aphyllophorales of Muddus National Park in North Sweden; AB Lundequistska Bokhandeln: Uppsala, Sweden, 1958; Volume 16, pp. 1–172. [Google Scholar]
- Manjón, J.L.; Moreno, G. Estudios sobre Aphyllophorales. III. Fructificaciones en Abies pinsapo Boiss. Cryptog. Mycol. 1983, 4, 145–156. [Google Scholar]
- Dai, Y.C. A revised checklist of corticioid and hydnoid fungi in China for 2010. Mycoscience 2011, 52, 69–79. [Google Scholar] [CrossRef]
- Liu, Z.B.; Wu, Y.D.; Zhao, H.; Lian, Y.P.; Wang, Y.R.; Wang, C.G.; Mao, W.L.; Yuan, Y. Outline, Divergence Times, and Phylogenetic Analyses of Trechisporales (Agaricomycetes, Basidiomycota). Front. Microbiol. 2022, 13, 818358. [Google Scholar] [CrossRef]
- 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. [Google Scholar] [CrossRef]
- Qu, M.-H.; Wang, D.-Q.; Zhao, C.-L. A Phylogenetic and Taxonomic Study on Xylodon (Hymenochaetales): Focusing on Three New Xylodon Species from Southern China. J. Fungi 2022, 8, 35. [Google Scholar] [CrossRef]
- Shen, H.W.; Bao, D.F.; Bhat, D.J.; Su, H.Y.; Luo, Z.L. Lignicolous freshwater fungi in Yunnan Province, China: An overview. Mycology 2022, 13, 119–132. [Google Scholar] [CrossRef]
- Wu, F.; Tohtirjap, A.; Fan, L.F.; Zhou, L.W.; Alvarenga, R.L.M.; Gibertoni, T.B.; Dai, Y.C. Global Diversity and Updated Phylogeny of Auricularia (Auriculariales, Basidiomycota). J. Fungi 2021, 7, 933. [Google Scholar] [CrossRef] [PubMed]
- Wu, F.; Yuan, Y.; Chen, J.J.; Cui, B.K.; Zhou, M.; Dai, Y.C. Terrestriporiaceae fam. nov., a new family of Russulales (Basidiomycota). Mycosphere 2020, 11, 2755–2766. [Google Scholar] [CrossRef]
- Xiao, Y.P.; Wang, Y.B.; Hyde, K.D.; Eleni, G.; Sun, J.Z.; Yang, Y.; Meng, J.; Yu, H.; Wen, T.C. Polycephalomycetaceae, a new family of clavicipitoid fungi segregates from Ophiocordycipitaceae. Fungal Divers. 2023, 120, 1–76. [Google Scholar] [CrossRef]
- Zhao, C.L.; Qu, M.H.; Huang, R.X.; Karunarathna, S.C. Multi-Gene Phylogeny and taxonomy of the wood-rotting fungal genus Phlebia sensu lato (Polyporales, Basidiomycota). J. Fungi 2023, 9, 320. [Google Scholar] [CrossRef]
- Zhou, M.; Dai, Y.C.; Vlasák, J.; Yuan, Y. Molecular Phylogeny and Global Diversity of the Genus Haploporus (Polyporales, Basidiomycota). J. Fungi 2021, 7, 96. [Google Scholar] [CrossRef]
Species Name | Sample No. | GenBank Accession No. | References | ||||
---|---|---|---|---|---|---|---|
ITS | nLSU | RPB1 | RPB2 | mt-SSU | |||
Diplomitoporus crustulinus | FD-137 | KP135299 | KP135211 | KP134883 | [18] | ||
Hyphoderma amoenum | USO 286622 | HE577030 | [16] | ||||
H. assimile | CBS:125852 | MH863808 | MH875272 | [25] | |||
H. cremeoalbum | NH 11538 (GB) | DQ677492 | DQ677492 | [15] | |||
H. cremeoalbum | CLZhao 17007 | OM985716 | OM985753 | OQ706819 | [13] | ||
H. crystallinum | CLZhao 9338 T | MW917161 | MW913414 | [10] | |||
H. crystallinum | CLZhao 9374 | MW917162 | MW913415 | [10] | |||
H. definitum | NH 12266 (GB) | DQ677493 | DQ677493 | [15] | |||
H. fissuratum | CLZhao 6731 | MT791331 | MT791335 | OQ706806 | [9] | ||
H. fissuratum | CLZhao 6726 T | MT791330 | MT791334 | OQ706805 | [9] | ||
H. floccosum | CLZhao 17129 T | MW301683 | MW293733 | OQ706826 | [11] | ||
H. floccosum | CLZhao 17215 | MW301687 | MW293735 | OQ706829 | [11] | ||
H. granuliferum | 5273 | JN710545 | JN710545 | JN710673 | [17] | ||
H. incrustatum | KHL6685 | AY586668 | [17] | ||||
H. litschaueri | NH 7603 (GB) | DQ677496 | DQ677496 | [15] | |||
H. litschaueri | FP-101740-Sp | KP135295 | KP135219 | KP134868 | KP134965 | [13] | |
H. macaronesicum | MA:Fungi 90388 | KC984327 | KF150025 | KF181122 | Unpublished | ||
H. macaronesicum | TFC:Mic 15115 | HE577011 | KF150050 | KF181118 | [17] | ||
H. marginatum | CLZhao 3404 T | OM985717 | OM985754 | [13] | |||
H. medioburiense | FD-335 | KP135298 | KP135220 | KP134869 | KP134966 | [26] | |
H. membranaceum | CLZhao 5844 | MW917167 | MW913420 | OQ706797 | [10] | ||
H. membranaceum | CLZhao 6971 T | MW917168 | MW913421 | OQ706807 | [10] | ||
H. microporoides | CLZhao 6857 T | MW917169 | MW913422 | [10] | |||
H. microporoides | CLZhao 8695 | MW917170 | MW913423 | [10] | |||
H. moniliforme | Wu 0211-42 T | KC928282 | [4] | ||||
H. moniliforme | Wu 0211-46 | KC928284 | KC928285 | [4] | |||
H. mopanshanense | CLZhao 6498 T | MT791329 | MT791333 | [9] | |||
H. mopanshanense | CLZhao 6449 | OM985720 | OM985759 | OQ706803 | [13] | ||
H. nemorale | TNM F3931 | KJ885183 | KJ885184 | [4] | |||
H. nemorale | Wu 9508-14 T | KC928280 | KC928281 | [4] | |||
H. niveomarginatum | CLZhao 25078 T | OR141728 | OR506179 | OR543992 | Present study | ||
H. nudicephalum | Wu9307_29 | AJ534269 | [27] | ||||
H. nudicephalum | CLZhao 17839 | OM985721 | OM985760 | OQ706835 | [13] | ||
H. obtusiforme | KHL1464 | JN572909 | [17] | ||||
H. obtusiforme | KHL11105 | JN572910 | [17] | ||||
H. obtusum | JS17804 | AY586670 | [17] | ||||
H. occidentale | KHL 8477 (GB) | DQ677499 | DQ677499 | [15] | |||
H. paramacaronesicum | MA:Fungi 87736 | KC984399 | [8] | ||||
H. paramacaronesicum | MA:Fungi 87737 | KC984405 | [8] | ||||
H. pinicola | TNM F13637 T | KJ885181 | KJ885182 | [17] | |||
H. pinicola | Wu 0108-36 | KC928278 | KC928279 | [17] | |||
H. prosopidis | ARIZ HHB 8479 | HE577029 | [4] | ||||
H. puerense | CLZhao 9476 T | MW443045 | [12] | ||||
H. puerense | CLZhao 9583 | MW443046 | MW443051 | [12] | |||
H. roseocremeum | NH10545 | AY586672 | [17] | ||||
H. setigerum | FCUG 1200 | AJ534273 | [27] | ||||
H. setigerum | FCUG 1688 T | AJ534272 | [27] | ||||
H. sinense | CLZhao 7963 | MW301679 | MW293730 | [11] | |||
H. sinense | CLZhao 17811 T | MW301682 | MW293732 | [11] | |||
H. sordidum | CLZhao 27379 | OR141731 | OR507165 | Present study | |||
H. sordidum | CLZhao 27390 T | OR141732 | OR506180 | OR520149 | OR507166 | Present study | |
H. subsetigerum | HHB11620 | GQ409521 | [17] | ||||
H. tenuissimum | CLZhao 7221 T | MW443049 | MW443054 | OQ706809 | [12] | ||
H. tenuissimum | CLZhao 16210 | MW443050 | MW443055 | [12] | |||
H. transiens | NH 12304 (GB) | DQ677504 | DQ677504 | [15] | |||
H. tropicum | CLZhao 17308 T | OM985727 | OM985768 | [13] | |||
H. variolosum | CBS:734.91 | MH862320 | MH873992 | [25] | |||
H. variolosum | CBS:735.91 | MH862321 | MH873993 | [25] | |||
H. weishanense | CLZhao 22403 T | OR141727 | OR506181 | Present study | |||
H. yunnanense | CLZhao 8845 T | OM985769 | OQ706811 | [13] |
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Yang, Y.; Jiang, Q.; Li, Q.; Yang, J.; Cha, L.; Cheng, L.; Yang, S.; Zhao, C.; Zhou, H. Molecular Systematics and Taxonomic Analyses of Three New Wood-Inhabiting Fungi of Hyphoderma (Hyphodermataceae, Basidiomycota). J. Fungi 2023, 9, 1044. https://doi.org/10.3390/jof9111044
Yang Y, Jiang Q, Li Q, Yang J, Cha L, Cheng L, Yang S, Zhao C, Zhou H. Molecular Systematics and Taxonomic Analyses of Three New Wood-Inhabiting Fungi of Hyphoderma (Hyphodermataceae, Basidiomycota). Journal of Fungi. 2023; 9(11):1044. https://doi.org/10.3390/jof9111044
Chicago/Turabian StyleYang, Yang, Qianquan Jiang, Qi Li, Jiawei Yang, Li Cha, Lijun Cheng, Shunqiang Yang, Changlin Zhao, and Hongmin Zhou. 2023. "Molecular Systematics and Taxonomic Analyses of Three New Wood-Inhabiting Fungi of Hyphoderma (Hyphodermataceae, Basidiomycota)" Journal of Fungi 9, no. 11: 1044. https://doi.org/10.3390/jof9111044