AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
Home Mycology Article
Article Link
Collect
Submit Manuscript
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline
Research Article | Open Access

Miracula einbuarlaekurica sp. nov., a new holocarpic endoparasitoid species from pennate freshwater diatoms in Iceland

Anthony T. BuayaaMarco Thinesa,b ( )
Senckenberg Biodiversity and Climate Research Centre, Frankfurt am Main, Germany
Department of Biological Sciences, Goethe University Frankfurt am Main, Institute of Ecology, Frankfurt am Main, Germany
Show Author Information

Abstract

Holocarpic oomycetes infecting freshwater diatoms are obligate endobiotic parasites reported from a wide range of habitats. So far, the taxonomy of and phylogeny of most species remains unresolved, since most have not been reported throughout the past decades and sequence data are available for only the four species, Aphanomycopsis bacillariacearum, Diatomophthora gillii, Ectrogella bacillariacearum, and the recently-discovered species Miracula moenusica. In the current study, a new freshwater diatom parasite resembling Ectrogella bacillariacearum in the sense of Scherffel was discovered from pennate diatoms (Ulnaria acus, Ulnaria ulna) collected from the small stream Einbúalækur on Víkurskarð, North Iceland and investigated for its life cycle and phylogenetic placement. In contrast to the original description, Scherffel reports an achlya-like spore discharge for Ectrogella bacillariacearum. The phylogenetic reconstruction and morphological characterisation in this study revealed that Scherffel’s E. bacillariacearum is largely unrelated to the epitype of the species and is a member of the early-diverging genus Miracula. Consequently, the new species is described as M. einbuarlaekurica in the present study. This adds a second freshwater member to the genus, demonstrating the high ecological adaptability of the genus, which thrives in both freshwater and marine ecosystems.

References

 
Beakes GW, Thines M. 2017. Hyphochytriomycota and Oomycota. In: JM A, AGB S, Ch S, editors. Handbook of the Protists. Heidelberg (Germany): Springer Verlag; p. 435–505.
 

Bennett R, Thines M. 2020. An overview on Philippine estuarine oomycetes. Philippine Journal of Systematic Biology. 14(7):1–14.

 

Buaya AT, Kraberg A, Thines M. 2019c. Dual culture of the oomycete Lagenisma coscinodisci Drebes and Coscinodiscus diatoms as a model for plankton/parasite interactions. Helgoland Marine Research. 73(1):2. doi:10.1186/s10152-019-0523-0.

 

Buaya AT, Ploch S, Hanic L, Nam B, Nigrelli L, Kraberg A, Thines M. 2017. Phylogeny of Miracula helgolandica gen. et sp. nov. and Olpidiopsis drebesii sp. nov. two basal oomycete parasitoids of marine diatoms, with notes on the taxonomy of Ectrogella-like species. Mycological Progress. 16(11–12):1041–1050. doi:10.1007/s11557-017-1345-6.

 

Buaya AT, Ploch S, Inaba S, Thines M. 2019d. Holocarpic oomycete parasitoids of red algae are not Olpidiopsis. FUSE. 4:21–31.

 

Buaya AT, Ploch S, Kraberg A, Thines M. 2020b. Phylogeny and cultivation of the holocarpic oomycete Diatomophthora perforans comb. nov., an endoparasitoid of marine diatoms. Mycological Progress. 19(5):441–454. doi:10.1007/s11557-020-01569-5.

 

Buaya AT, Ploch S, Thines M. 2019a. Rediscovery and phylogenetic placement of Olpidiopsis gillii (de Wildeman) Friedmann, a holocarpic oomycete parasitoid of freshwater diatoms. Mycoscience. 60(3):141–146. doi:10.1016/j.myc.2019.01.002.

 

Buaya AT, Scholz B, Thines M. 2021. Taxonomy and phylogeny of Aphanomycopsis bacillariacearum a holocarpic oomycete parasite of the freshwater diatom genus Pinnularia. Mycological Progress. 20(3):289–298. doi:10.1007/s11557-021-01668-x.

 

Buaya AT, Thines M. 2019b. Miracula Moenusica, a New Member of the Holocarpic Parasitoid Genus from the Invasive Freshwater Diatom Pleurosira Laevis. FUSE. 3(1):19–33. doi:10.3114/fuse.2019.03.04.

 

Buaya AT, Thines M. 2020a. Diatomophthoraceae – a new family of olpidiopsis-like diatom parasitoids largely unrelated to Ectrogella. FUSE. 5(1):113–118. doi:10.3114/fuse.2020.05.06.

 

Buaya AT, Thines M. 2020c. An overview on the biology and phylogeny of the early-diverging oomycetes. Philippine Journal of Systematic Biology. 14(4):1–20.

 

Cornu M. 1872. Monographie des Saprolegniees, etude physiologique et systematique. Annales des Sciences Naturelles Botanique. 15:1–198.

 
Dick MW. 2001. Straminipilous Fungi. Netherlands: Kluwer.
 

Feldmann J, Feldmann G. 1955. Observations sur quelques Phycomycetes marins nouveaux ou peu connus. Revue Mycologique. 20:231–251.

 

Friedmann I. 1952. Über neue und wenig bekannte auf Diatomeen parasitierende Phycomyceten. Österreichische botanische Zeitschrift. 99(2–3):173–219. doi:10.1007/BF01292873.

 

Garvetto A, Nézan E, Badis Y, Bilien G, Arce P, Bresnan E, Gachon CMM, Siano R. 2018. Novel widespread marine oomycetes parasitising diatoms, including the toxic genus Pseudo-nitzschia: genetic, morphological, and ecological characterisation. Front Microbiol. 9:2918. doi:10.3389/fmicb.2018.02918.

 

Garvetto A, Perrineau MM, Dressler‐Allame M, Bresnan E, Gachon CM. 2020. “Ectrogella” parasitoids of the diatom Licmophora sp. are polyphyletic. Journal of Eukaryotic Microbiology. 67(1):18–27. doi:10.1111/jeu.12750.

 

Guillard RR, Ryther JH. 1962. Studies of marine planktonic diatoms: i. Cyclotella nana Hustedt, and Detonula confervacea (Cleve) Gran. Can J Microbiol. 8(2):229–239. doi:10.1139/m62-029.

 

Hanic LA, Sekimoto S, Bates SS. 2009. Oomycete and chytrid infections of the marine diatom Pseudo-nitzschia pungens (Bacillariophyceae) from Prince Edward Island, Canada. Canadian Journal of Botany. 87(11):1096–1105. doi:10.1139/B09-070.

 
Karling JS. 1942. The simple holocarpic biflagellate Phycomycetes. New York (USA): Published by Karling JS.
 

Katoh K, Rozewicki J, Yamada KD. 2019. MAFFT online service: multiple sequence alignment, interactive sequence choice and visualization. Brief Bioinform. 20(4):1160–1166. doi:10.1093/bib/bbx108.

 

Kumar S, Stecher G, Tamura K. 2016. MEGA7: Molecular Evolutionary Genetics Analysis version 7.0 for bigger datasets. Mol Biol Evol. 33(7):1870–1874. doi:10.1093/molbev/msw054.

 

Scherffel A. 1925. Endophytische Phycomyceten-Parasiten der Bacillariaceen und einige neue Monadinen Ein Beitrag zur Phylogenie der Oomyceten (Schröter). Archiv für Protistenkunde. 52:1–141.

 

Sparrow FK. 1933. Inoperculate chytridiaceous organisms collected in the vicinity of Ithaca, N.Y., with notes on other aquatic fungi. Mycologia. 25(6):513–535. doi:10.2307/3754109.

 

Sparrow FK. 1960. Aquatic Phycomycetes. USA: The University of Michigan Press.

 

Sparrow FK, Ellison B. 1949. Olpidiopsis schenkiana and Its Hyperparasite Ectrogella besseyi n. Sp Mycologia. 41(1):28–35. doi:10.2307/3755270.

 

Stamatakis A. 2014. RAxML version 8: a tool for phylogenetic analysis and post-analysis of large phylogenies. Bioinformatics. 30(9):1312–1313. doi:10.1093/bioinformatics/btu033.

 

Thines M, Aoki T, Crous PW, Hyde KD, Lücking R, Malosso E, et al. 2020. Setting scientific names at all taxonomic ranks in italics facilitates their quick recognition in scientific papers. IMA Fungus. 11(1):1–5. doi:10.1186/s43008-020-00048-6

 

Wang Y, Tian RM, Gao ZM, Bougouffa S, Qian PY. 2014. Optimal eukaryotic 18S and universal 16S/18S ribosomal RNA primers and their application in a study of symbiosis. PLoS ONE. 9(3):e90053. doi:10.1371/journal.pone.0090053.

 

Zopf W. 1878. Über einem neuen parasitischen Phycomyceten. Mitt V Prov Brandenburg. 20:77–80.

 

Zopf W. 1884. Zur Kenntniss der Phycomyceten I. Zur Morphologie und Biologie der Ancylisteen und Chytridiaceen. Nov Act Acad Caes Leopoldino-Carolinae Germ Nat Cur. 47:143–236.

Mycology
Pages 153-161
Cite this article:
Buaya AT, Thines M. Miracula einbuarlaekurica sp. nov., a new holocarpic endoparasitoid species from pennate freshwater diatoms in Iceland. Mycology, 2022, 13(2): 153-161. https://doi.org/10.1080/21501203.2021.1980446

263

Views

2

Crossref

1

Web of Science

2

Scopus

Altmetrics

Received: 07 March 2021
Accepted: 06 September 2021
Published: 29 October 2021
© 2021 The Author(s).

This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

Return