Diversity and composition of the North Sikkim hot spring mycobiome using a culture-independent method
- PMID: 33755859
- DOI: 10.1007/s12223-021-00859-z
Diversity and composition of the North Sikkim hot spring mycobiome using a culture-independent method
Abstract
Fungi are considered to be the most resilient and economically important microbial community that can easily survive and optimally grow under a wide range of growth conditions. Thermophilic fungi from the geothermal sources have been less pondered upon and lie unexplored. Here, a microbiome approach was conducted to understand the concealed world of the environmental mycobiota from the two hot springs of North Sikkim district located in North-east India. The solfataric muds from the hot springs were analyzed. In both the samples, on the basis of genus level classification, genus Fusarium had the highest abundance followed by Colletotrichum, Pochonia, Pyricularia, Neurospora, etc. Analyzing the predicted genes, the functional proteins of New Yume Samdung mycobiome were found to be dominated by the genera Fusarium (22%), Trichoderma (12%), and Aspergillus (11%), whereas in the case of Old Yume Samdung, it was dominated by the genera Aspergillus (11%), Saccharomyces (6%), and Fusarium (5%). Interestingly, in the studied mycobiome, environmental yeasts were also detected. From the functional metagenomics, sulfate adenylatetransferase (SAT) proteins for sulfur assimilation were found in some of the fungal reads. Toxin protein reads such as AM-toxin biosynthesis proteins, AF-toxin biosynthesis proteins, Gliotoxin biosynthesis proteins, and aflatoxin biosynthesis proteins were detected in the mycobiomes.
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References
-
- Abdel-Azeem AM, Salem FM, Abdel-Azeem MA et al (2016) Biodiversity of the genus Aspergillus in different habitats. In: Gupta VK (ed) New and future developments in microbial biotechnology and bioengineering: Aspergillus system properties and applications. Elsevier, Amsterdam, pp 3–28 - DOI
-
- Abdel-Azeem AM, Abdel-Azeem MA, Abdul-Hadi SY et al (2019) Aspergillus: Biodiversity, ecological significances, and industrial applications. In: Yadav A, Mishra S, Singh S et al (eds) Recent advancement in white biotechnology through fungi. Fungal Biology. Springer, Cham https://doi.org/10.1007/978-3-030-10480-14
-
- Apinis AE (1953) Distribution, classification and biology of certain soil inhabiting fungi. Ph.D. Thesis. Nottingham University, United Kingdom
-
- Badirzadeh A, Niyyati M, Babaei Z et al (2011) Isolation of free-living amoebae from sarein hot springs in Ardebil province. Iran Iran J Parasitol 6:1–8 - PubMed
-
- Berka RM, Grigoriev IV, Otillar R et al (2011) Comparative genomic analysis of the thermophilic biomass-degrading fungi Myceliophthora thermophila and Thielavia terrestris. Nat Biotechnol 29:922–927. https://doi.org/10.1038/nbt.1976 - DOI - PubMed
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