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Type: Article
Published: 2023-02-27
Page range: 113–134
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Coprinopsis (Psathyrellaceae, Agaricales) in the Neotropics: three new species and a new combination

Universidade Federal do Rio Grande do Sul, Instituto de Biociências, Departamento de Botânica, Campus do Vale, Agronomia, Porto Alegre, RS, Brazil
Universidade Federal do Rio Grande do Sul, Instituto de Biociências, Departamento de Botânica, Campus do Vale, Agronomia, Porto Alegre, RS, Brazil
Instituto de Investigación para el Desarrollo Sustentable de Ceja de Selva, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Chachapoyas, Perú
Instituto de Investigación para el Desarrollo Sustentable de Ceja de Selva, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Chachapoyas, Perú
Universidade Federal do Rio Grande do Sul, Instituto de Biociências, Departamento de Botânica, Campus do Vale, Agronomia, Porto Alegre, RS, Brazil
Fungi Basidiomycota coprinoid phylogeny

Abstract

In order to contribute to the knowledge of Coprinopsis in Southern Brazil, specimens were collected in the Atlantic Forest and Pampa Biomes. Morphological studies and phylogenetic analyses (Maximum Likelihood and Bayesian Inference) of the nucITS, nucLSU, TEF1 and β-tubulin were performed to describe new species and their evolutionary relations. Five Coprinopsis species were found. The molecular and morphological data supported the description of three new species and a new combination in the genus. Detailed descriptions, illustrations of their macro- and microscopic characteristics and a key to identify Coprinopsis species in Brazil are provided.

References

<p>Aime, M.C. &amp; Phillips-Mora, W. (2005) The causal agents of witches’ broom and frosty pod rot of cacao (chocolate, <em>Theobroma cacao</em>) form a new lineage of Marasmiaceae. <em>Mycologia</em> 97: 1012–1022.&nbsp; https://doi.org/10.3852/mycologia.97.5.1012</p>
<p>Alves, M.H. &amp; Cavalcanti, M.A.Q. (1996) Coprinaceae en el campus de la Universidad Federal de Pernambuco (Recife, PE, Brasil). <em>Boletín Micológico</em> 11: 33–40.&nbsp; https://doi.org/10.22370/bolmicol.1996.11.0.1002</p>
<p>Asef, M., Khosravi, V. &amp; Naeimi, S. (2015) First report of <em>Coprinopsis urticicola</em> from Iran. <em>Mycologia Iranica</em> 2: 141.</p>
<p>Badalyan, S.M., Navarro-González, M. &amp; Kües, U. (2011) <em>Taxonomic significance of anamorphic characteristics in the life cycle of coprinoid mushrooms</em>. Proceedings of the 7th International Conference on Mushroom Biology and Mushroom Products (ICMBMP7). Arcachon, France, pp. 140–154.</p>
<p>Bogart, F. van (1976) The genus <em>Coprinus</em> in western North America, part I: Section Coprinus. <em>Mycotaxon</em> 4 (1): 233–275.</p>
<p>Bogart, F. van (1979) The genus <em>Coprinus</em> in western North America, part II: Section Lanatuli. <em>Mycotaxon</em> 8 (1): 243–291.</p>
<p>Brodie, H.J. (1930) <em>The oidia of Coprinus lagopus and their relation with insects</em>. University of Manitoba, Winnipeg, Canada.&nbsp; https://doi.org/10.1093/oxfordjournals.aob.a090278</p>
<p>Calaça, F.J.S. &amp; Xavier-Santos, S. (2012) Fezes de herbívoros: um microcosmo inexplorado da diversidade fúngica. <em>Heringeriana</em> 6: 52–55.&nbsp; https://doi.org/10.17648/heringeriana.v6i1.37</p>
<p>Darriba, D., Taboada, G.L., Doallo, R. &amp; Posada, D. (2012) jModelTest 2: more models, new heuristics and parallel computing. <em>Nature Methods</em> 9: 772.&nbsp; https://doi.org/10.1038/nmeth.2109</p>
<p>Dennis, R.W.G. (1961) Fungi venezuelani: IV. Agaricales. <em>Kew Bulletin</em> 15 (1): 67–156.&nbsp; https://doi.org/10.2307/4115784</p>
<p>Dentinger, B.T., Margaritescu, S. &amp; Moncalvo, J.M. (2010) Rapid and reliable high-throughput methods of DNA extraction for use in barcoding and molecular systematics of mushrooms. <em>Molecular Ecology Resources</em> 10 (4): 628–633.&nbsp; https://doi.org/10.1111/j.1755-0998.2009.02825.x</p>
<p>Doveri, F., Granito, V.M. &amp; Lunghini, D. (2005). Nuovi ritrovamenti di <em>Coprinus</em> s.l. fimicoli in Italia = New findings of fimicolous <em>Coprinus </em>s.l. in Italy. <em>Revista Iberoamericana de Micología</em> 48 (4): 319–340.</p>
<p>Doyle, J.J &amp; Doyle, J.L. (1987) A rapid isolation procedure for small quantities of fresh tissue. <em>Phytochemical Bulletim</em> 19: 11–15.</p>
<p>Drechsler-Santos, E.R., Pastorini, L.H. &amp; Putzke, J<em>. </em>(2007) Primeiro relato de fungos Agaricales em fragmento de mata nativa em Frederico Westphalen - RS. <em>Revista Brasileira de Biociências</em> 5: 471–473.</p>
<p>Fukiharu, T., Shimizu, K., Utsunomiya, H., Raut, J.K., Goto, R., Okomoto, T., Kato, M., Horigome, R., Furuki, T. &amp; Kinjo, N. (2014) <em>Coprinopsis asiaticiphlyctidospora</em> sp. nov., an agaric ammonia fungus from Amami and Okinawa, southern Japan. <em>Mycoscience</em> 55: 355–360.&nbsp; https://doi.org/10.1016/j.myc.2013.12.002</p>
<p>Fukiharu, T., Shimizu, K., Nakajima, A., Miyamoto, T., Raut, J.K. &amp; Kinjo, N. (2015) <em>Coprinopsis igarashii</em> sp. nov., a coprophilous agaric fungus from Hokkaido, northern Japan. <em>Mycoscience</em> 56: 413–418.&nbsp; https://doi.org/10.1016/j.myc.2014.12.005</p>
<p>Gardes, M. &amp; Bruns, T.D. (1993) ITS primers with enhanced specificity for basidiomycetes—application to the identification of mycorrhizae and rusts. <em>Molecular Ecology</em> 2: 113–118.&nbsp; https://doi.org/10.1111/j.1365-294X.1993.tb00005.x</p>
<p>Gierczyk, B., Rodriguez-Flakus, P., Pietras, M., Gryc, M., Czerniawski, W. &amp; Piatek, M. (2017) <em>Coprinopsis rugosomagnispora</em>: a distinct new coprinoid species from Poland (Central Europe). <em>Plant Systematics and Evolution</em> 303: 915–925.&nbsp; https://doi.org/10.1007/s00606-017-1418-7</p>
<p>Gminder, A. (2010) <em>Die Großpilze Baden-Württembergs, </em>5. Stuttgart, Ulmer, 671 pp.</p>
<p>Góes-Neto, A., Loguercio-Leite, C. &amp; Guerrero, R.T. (2005) DNA extraction from frozen field-collected and dehydrated herbarium fungal basidiomata: performance of SDS and CTAB-based methods. <em>Biotemas</em> 18 (2): 19–32.&nbsp; https://doi.org/10.5007/%25x</p>
<p>Házi, J., Nagy, L.G, Vágvölgyi, C. &amp; Papp, T. (2011) <em>Coprinellus radicellus</em>, a new species with northern distribution. <em>Mycological Progress</em> 10: 363–371.&nbsp; https://doi.org/10.1007/s11557-010-0709-y</p>
<p>Hernández-Garay, M.A. &amp; Monter-SanAgustín, N. (2013) <em>Implantación a Microescala para Determinar las Características Fisiológicas de Hongos Miceliales y Levaduras en el Laboratorio de Microbiología General II de la Carrera de QFB de la FES Zaragoza</em>. Universidad Nacional Autónoma de México.</p>
<p>Hopple, J.S. &amp; Vilgalys, R. (1999) Phylogenetic relationships in the mushroom genus <em>Coprinus</em> and dark-spored allies based on sequence data from the nuclear gene coding for the large ribosomal subunit RNA: divergent domains, outgroups, and monophyly. <em>Molecular Phylogenetics and Evolution</em> 13: 1–19.&nbsp; https://doi.org/10.1006/mpev.1999.0634</p>
<p>Karsten, P.A. (1879). Bidrag till Kännedom af Finlands Natur och Folk. <em>Helsingfors</em> 32: 28.</p>
<p>Karsten, P.A. (1881). Hymenomycetes fennici. <em>Acta Societatis Pro Fauna et Flora Fennica</em> 2 (1): 27.</p>
<p>Katoh, K. &amp; Standley, D.M. (2013) MAFFT. Multiple sequence alignment software 7: improvements in performance and usability. <em>Molecular Biology and Evolution</em> 30: 772–780.&nbsp; https://doi.org/10.1093/molbev/mst010</p>
<p>Kauffman, C.H. (1918) <em>The agaricaceae of Michigan</em>, vol I. <em>Michigan geological and biological survey</em> 26 (5), Mich, W.H. Crawford, state printers, Lansing, 928 pp. https://doi.org/10.5962/bhl.title.58545</p>
<p>Keirle, M.R., Hemmes, D.E. &amp; Desjardin, D.E. (2004) Agaricales of the Hawaiian Islands. 8. Agaricaceae<em>: Coprinus</em> and <em>Podaxis</em>; Psathyrellaceae: <em>Coprinopsis</em>, <em>Coprinellus</em> and <em>Parasola</em>. <em>Fungal Diversity</em> 8: 33–124.</p>
<p>Kearse, M., Moir, R., Wilson, A., Stones-Havas, S., Cheung, M., Sturrock, S., Buxton, S., Cooper, A., Markowitz, S., Duran, C., Thierer, T., Ashton, B., Meintjes, P. &amp; Drummond, A. (2012) Geneious Basic: an integrated and extendable desktop software platform for the organization and analysis of sequence data. <em>Bioinformatics</em> 28: 1647‒1649.&nbsp; https://doi.org/10.1093/bioinformatics/bts199</p>
<p>Kornerup, A. &amp; Wanscher, J.H. (1978) <em>Methuen Handbook of Colour</em>, 3rd ed. Eyre Methuen.</p>
<p>Largent, D.L. (1987) <em>How to Identify Mushrooms to Genus I: Macroscopic Features</em>. Mad River Press.</p>
<p>Largent, D.L., Johnson, D. &amp; Watling, R. (1977) <em>How to Identify Mushrooms to Genus III: Microscopic Features</em>. Mad River Press.</p>
<p>Larsson, A. (2014) AliView: a fast and lightweight alignment viewer and editor for large data sets. <em>Bioinformatics</em> 30 (22): 3276–3278.&nbsp; https://doi.org/10.1093/bioinformatics/btu531</p>
<p>Meijer, A.A.R. de (2008) <em>Macrofungos notáveis das Florestas de Pinheiro-do-Paraná</em>. Embrapa Florestas.</p>
<p>Meijer, A.A.R. de (2010) Preliminary list of the macromycetes from the Brazilian state of Paraná: corrections and updating. <em>Boletim do Museu Botânico Municipal de Curitiba</em> 72: 01–09.</p>
<p>Melzer, A., Ferisin, G. &amp; Dovana, F. (2016) <em>Coprinopsis aesontiensis</em>, a new species found in Friuli Venezia Giulia, Italy. <em>Micologia e Vegetazione Mediterranea</em> 31 (2): 123–132.</p>
<p>Melo, R.F.R., Chikowski, R.S., Miller, A.N. &amp; Maia, L.C. (2016) Coprophilous Agaricales (Agaricomycetes, Basidiomycota) from Brazil. <em>Phytotaxa</em> 266 (1): 1–14.&nbsp; https://doi.org/10.11646/phytotaxa.266.1.1</p>
<p>Miller, M.A., Pfeiffer, W. &amp; Schwartz, T. (2010) <em>Creating the CIPRES science gateway for inference of large phylogenetic trees. Proceedings of the Gateway Computing Environments Workshop (GCE)</em>. New Orleans, Louisiana, pp. 1‒8.&nbsp; https://doi.org/10.1109/GCE.2010.5676129</p>
<p>Moncalvo, J.M., Vilgalys, R., Redhead, S.A., Johnson, J.E., James, T.Y., Aime, C.M, Hofstetter, V., Verduin, S.J., Larsson, E., Baroni, T.J., Thorn, G.R., Jacobsson, S., Clémençon, H. &amp; Miller, O.K.Jr. (2002) One hundred and seventeen clades of euagarics. <em>Molecular Phylogenetics and Evolution</em> 23: 357–400.&nbsp; https://doi.org/10.1016/S1055-7903(02)00027-1</p>
<p>Nagy, L.G., Vágvölgyi, C. &amp; Tamás, C. (2010) Type studies and nomenclatural revisions in <em>Parasola</em> (Psathyrellaceae) and related taxa. <em>Mycotaxon</em> 112: 103–141.&nbsp; https://doi.org/10.5248/112.103</p>
<p>Nagy, L.G., Walther, G., Házi, J., Vágvölgyi, C. &amp; Papp, T. (2011) Understanding the Evolutionary Processes of Fungal Fruiting Bodies: Correlated Evolution and Divergence Times in the Psathyrellaceae. <em>Systematic Biology</em> 60 (3): 303–317.&nbsp; https://doi.org/10.1093/sysbio/syr005</p>
<p>Nagy, L.G., Desjardin, D.E., Vágvölgyi, C., Kemp, R. &amp; Papp, T. (2013) Phylogenetic analyses of <em>Coprinopsis</em> sections Lanatuli and Atramentarii identify multiple species within morphologically defined taxa. <em>Mycologia</em> 105 (1): 112–124.</p>
<p>Örstadius, L., Ryberg, M. &amp; Larsson, E. (2015) Molecular phylogenetics and taxonomy in Psathyrellaceae (Agaricales) with focus on psathyrelloid species: introduction of three new genera and 18 new species. <em>Mycological Progress</em> 14: 1–42.&nbsp; https://doi.org/10.1007/s11557-015-1047-x</p>
<p>Orton, P.D. (1972) <em>Notes on British Agarics: IV</em>. In Notes from Royal Botani c Gerden, p. 135.</p>
<p>Pattengale, N.D., Alipour, M., Bininda-Emonds, O.R., Moret, B.M. &amp; Stamatakis, A. (2010) How many bootstrap replicates are necessary? <em>Journal of Computational Biology</em> 17: 337‒354.&nbsp; https://doi.org/10.1089/cmb.2009.0179</p>
<p>Peay, K.G., Bidartondo, M.I. &amp; Arnold, A.E. (2010) Not every fungus is everywhere: scaling to the biogeography of fungal-plant interactions across roots, shoots and ecosystems. <em>New Phytologist</em> 185: 878‒882. &nbsp;https://doi.org/10.1111/j.1469-8137.2009.03158.x</p>
<p>Pegler, D.N. (1983) <em>Agaric flora of the Lesser Antilles</em>. Kew Bulletin Add.</p>
<p>Pegler, D.N. (1997)<em> The Agarics of São Paulo</em>, Brazil. Royal Botanical Gardens, Kew, 68 pp.</p>
<p>Persoon, C.H. (1797) Tentamen dispositionis methodice Fungorum. Lipsiae 62 pp.</p>
<p>Picón, R.M. (2002) <em>Coprinus lotinae</em>. Una nueva especie saprobia sobre <em>Eucalyptus</em> en el litoral cantábrico. <em>Sociedad Micológica de Portugalete-Portugaleteko Mikologia Elkartea Apdo</em>, 92.</p>
<p>Picón, R.M. (2011) <em>Coprinopsis lotinae</em> (Picon) Picon, comb. nov. (Psathyrellaceae). <em>Zizak</em> 7: 43–45.</p>
<p>Polak, E., Aebi, M. &amp; Kües, U. (2001) Morphological variations in oidium formation in the basidiomycete <em>Coprinus cinereus</em>. <em>Mycological Research</em> 105: 603–610.&nbsp; https://doi.org/10.1017/S0953756201003756</p>
<p>Rao, G., Dai, D., Zhao, H., Liang, Y., Li, Y. &amp; Zhang, B. (2021) Two new psathyrelloid species of <em>Coprinopsis</em> (Agaricales, Psathyrellaceae) from China. <em>MycoKeys</em> 83: 85–103.&nbsp; https://doi.org/10.3897/mycokeys.83.71405</p>
<p>Raut, J.K., Fukiharu, T., Shimizu, K, Kawamoto, S., Takeshige, S., Tanaka, C., Yamanaka, T. &amp; Suzuki, A. (2015) <em>Coprinopsis novorugosobispora</em> (Basidiomycota, Agaricales), an ammonia fungus new to Canada. <em>Mycosphere </em>6 (5): 612‒619.&nbsp; https://doi.org/10.5943/mycosphere/6/5/10</p>
<p>Redhead, S.A., Vilgalys, R., Moncalvo, J.M., Johnson, J. &amp; Hopple, J.S. (2001) <em>Coprinus</em> Pers. and the disposition of <em>Coprinus</em> species <em>sensu lato</em>. <em>Taxon</em> 50: 203‒241.&nbsp; https://doi.org/10.2307/1224525</p>
<p>Rehner, S. &amp; Buckley, E. (2005) A <em>Beauveria</em> phylogeny inferred from nuclear ITS and EF1-?? sequences: Evidence for cryptic diversification and links to <em>Cordyceps</em> teleomorphs. <em>Mycologia</em> 97 (1): 84‒98.&nbsp; https://doi.org/10.3852/mycologia.97.1.84</p>
<p>Renuka, S. &amp; Ramanujam, B. (2016) Fungal endophytes from maize (<em>Zea mays</em> L.): isolation, identification and screening against maize stem borer, <em>Chilo partellus</em> (Swinhoe). <em>Journal of Pure and Applied Microbiology</em> 10 (1): 523‒529.</p>
<p>Richardson, M.J. (2001) Coprophilous fungi from Brazil. <em>Brazilian Archives of Biology and Technology</em> 44 (3): 283‒289.&nbsp; https://doi.org/10.1590/S1516-89132001000300010</p>
<p>Rick, J. (1961) Basidiomycetes Eubasidii in Rio Grande do Sul – Brasilia. <em>Iheringia</em> 8: 296–450.</p>
<p>Ronquist, F., Teslenko, M., Mark, P., Ayres, D.L., Darling, A., Höhna, S., Larget, B., Liu, L., Suchard, M.A. &amp; Huelsenbeck, J.P. (2012) MrBayes 3.2: efficient Bayesian phylogenetic inference and model choice across a large model space. <em>Systematic Biology</em> 61: 539‒542.&nbsp; https://doi.org/10.1093/sysbio/sys029</p>
<p>Sambrook, J., Fritsch, E.F. &amp; Maniatis, T. (1989) <em>Molecular cloning: a laboratory manual</em> (No. Ed. 2). Cold Spring Harbor Laboratory Press.</p>
<p>Singer, R. (1973) Diagnoses fungorum novorum Agaricalium III. Beih. <em>Sydowia</em> 7:1‒106.</p>
<p>Schafer, D.J. (2010) Keys to sections of <em>Parasola, Coprinellus, Coprinopsis </em>and <em>Coprinus</em> in Britain. <em>Field Mycology</em> 11 (2): 44‒51.&nbsp; https://doi.org/10.1016/j.fldmyc.2010.04.006</p>
<p>Stamatakis, A. (2014) RAxML version 8: a tool for phylogenetic analysis and post-analysis of large phylogenies. <em>Bioinformatics</em> 30: 1312–1313.&nbsp; https://doi.org/10.1093/bioinformatics/btu033</p>
<p>Sobestiansky, G. (2005) Contribution to a macromycete survey of the states of Rio Grande do Sul and Santa Catarina in Brazil. <em>Brazilian Archives of Biology and Technology</em> 48: 437–457.&nbsp; https://doi.org/10.1590/S1516-89132005000300015</p>
<p>Syamsia, S., Idhan, A., Patappari, A., Noerfitryani, N., Rahmi, R. &amp; Rahim, I. (2019). Molecular Identification of Endophytic Fungi from Local Rice and Growth Test on Several Types of Culture Media. <em>International Journal of Agriculture System</em> 7 (2): 89‒99.&nbsp; https://doi.org/10.20956/ijas.v7i2.2031</p>
<p>Tibpromma, S., Hyde, K.D., Jeewon, R., Maharachchikumbura, S.S.N., Liu, J.-K., Bhat, D.J., Jones, E.B.G., McKenzie, E.H.C., Camporesi, E., Bulgakov, T.S., Doilom, M., de Azevedo Santiago, A.L.C.M., Das, K., Manimohan, P., Gibertoni, T.B., Lim, Y.W., Ekanayaka, A.H., Thongbai, B., Lee, H.B., Yang, J.-B., Kirk, P.M., Sysouphanthong, P., Singh, S.K., Boonmee, S., Dong, W., Anil Raj, K.N., Latha, K.P.D., Phookamsak, R., Phukhamsakda, C., Konta, S., Jayasiri, S.C., Norphanphoun, C., Tennakoon, D.S., Li, J., Dayarathne, M.C., Perera, R.H., Xiao, Y., Wanasinghe, D.N., Senanayake, I.C., Goonasekara, I.D., de Silva, N.I., Mapook, A., Jayawardena, R.S., Dissanayake, A.J., Manawasinghe, I.S., Chethana, K.W.T., Luo, Z.-L., Hapuarachchi, K.K., Baghela, A., Soares, A.M., Vizzini, A., Meiras-Ottoni, A., Mešić, A., Dutta, A.K., de Souza, C.A.F., Richter, C., Lin, C.-G., Chakrabarty, D., Daranagama, D.A., Lima, D.X., Chakraborty, D., Ercole, E., Wu, F., Simonini, G., Vasquez, G., da Silva, G.A., Plautz Jr., H.L., Ariyawansa, H.A., Lee, H., Kušan, I., Song, J., Sun, J., Karmakar, J., Hu, K., Semwal, K.C., Thambugala, K.M., Voigt, K., Acharya, K., Rajeshkumar, K.C., Ryvarden, L., Jadan, M., Hosen, Md.I., Mikšík, M., Samarakoon, M.C., Wijayawardene, N.N., Kim, N.K., Matočec, N., Singh, P.N., Tian, Q., Bhatt, R.P., de Oliveira, R.J.V., Tulloss, R.E., Aamir, S., Kaewchai, S., Marathe, S.D., Khan, S., Hongsanan, S., Adhikari, S., Mehmood, T., Bandyopadhyay, T.K., Svetasheva, T.Yu., Nguyen, T.Th.Th., Antonín, V., Li, W.-J., Wang, Y., Indoliya, Y., Tkalčec, Z., Elgorban, A.M., Bahkali, A.H., Tang, A.M.C., Su, H.-Y., Zhang, H., Promputtha, I., Luangsa-ard, J., Xu, J., Yan, J., Kang J.-C., Stadler, M., Mortimer, P.E., Chomnunti, P., Zhao, Q., Phillips, A.J.L., Nontachaiyapoom, S., Wen, T.-Ch. &amp; Karunarathna, S.C. (2017) Fungal diversity notes 491–602: taxonomic and phylogenetic contributions to fungal taxa. <em>Fungal Diversity</em> 83: 1–261.&nbsp; https://doi.org/10.1007/s13225-017-0378-0</p>
<p>Thaler, M.T., Al-Wahsh, A., Meuser, A., Rooks, A. &amp; Qumsiyeh, M. (2020) <em>Macrofungi from the Hebron and Jerusalem Hills of Palestine</em>.&nbsp; https://doi.org/10.5248/135.231</p>
<p>Thon, M.R. &amp; Royse, D.J. (1999) Partial beta-tubulin gene sequences for evolutionary studies in the Basidiomycotina. <em>Mycologia</em> 91: 468–474.&nbsp; https://doi.org/10.1080/00275514.1999.12061040</p>
<p>Wächter, D. &amp; Melzer, A. (2020) Proposal for a subdivision of the family Psathyrellaceae based on a taxon-rich phylogenetic analysis with iterative multigene guide tree. <em>Mycological Progress</em> 19: 1151‒1265.&nbsp; https://doi.org/10.1007/s11557-020-01606-3</p>
<p>Uljé, C.B. (2005) <em>Coprinus</em>. <em>Flora Agaricina Neerlandica</em> 6: 22–109.</p>
<p>Vilgalys, R. &amp; Hester, M. (1990) Rapid genetic identification and mapping of enzymatically amplified ribosomal DNA from several <em>Cryptococcus</em> species. <em>Journal of Bacteriology</em> 172: 4238‒4246.&nbsp; https://doi.org/10.1128/jb.172.8.4238-4246.1990</p>
<p>White T.J., Bruns, T., Lee, S. &amp; Taylor, J. (1990) Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics. <em>In</em>: Innis, M.A., Gelfand, D.H., Sninsky, J.J. &amp; White, T.J. (Eds.) <em>PCR Protocols: a guide to methods and applications</em>. Academic Press, Inc., New York, pp. 315–322.&nbsp; https://doi.org/10.1016/B978-0-12-372180-8.50042-1</p>
<p>Yoon, K.S. (2004) Electron and Light Microscopic Studies on the Development of Oidia from Somatic Mycelium of <em>Coprinus cinereus</em>. <em>Mycobiology</em> 32: 164.&nbsp; https://doi.org/10.4489/MYCO.2004.32.4.164</p>