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Genomic Analysis of Aspergillus Section Terrei Reveals a High Potential in Secondary Metabolite Production and Plant Biomass Degradation

Authors :
Sebastian Theobald
Tammi C. Vesth
Elena Geib
Jane L. Nybo
Jens C. Frisvad
Thomas O. Larsen
Alan Kuo
Kurt LaButti
Ellen K. Lyhne
Inge Kjærbølling
Line Ledsgaard
Kerrie Barry
Alicia Clum
Cindy Chen
Matt Nolan
Laura Sandor
Anna Lipzen
Stephen Mondo
Jasmyn Pangilinan
Asaf Salamov
Robert Riley
Ad Wiebenga
Astrid Müller
Roland S. Kun
Ana Carolina dos Santos Gomes
Bernard Henrissat
Jon K. Magnuson
Blake A. Simmons
Miia R. Mäkelä
Uffe H. Mortensen
Igor V. Grigoriev
Matthias Brock
Scott E. Baker
Ronald P. de Vries
Mikael R. Andersen
Source :
Journal of Fungi, Vol 10, Iss 7, p 507 (2024)
Publication Year :
2024
Publisher :
MDPI AG, 2024.

Abstract

Aspergillus terreus has attracted interest due to its application in industrial biotechnology, particularly for the production of itaconic acid and bioactive secondary metabolites. As related species also seem to possess a prosperous secondary metabolism, they are of high interest for genome mining and exploitation. Here, we present draft genome sequences for six species from Aspergillus section Terrei and one species from Aspergillus section Nidulantes. Whole-genome phylogeny confirmed that section Terrei is monophyletic. Genome analyses identified between 70 and 108 key secondary metabolism genes in each of the genomes of section Terrei, the highest rate found in the genus Aspergillus so far. The respective enzymes fall into 167 distinct families with most of them corresponding to potentially unique compounds or compound families. Moreover, 53% of the families were only found in a single species, which supports the suitability of species from section Terrei for further genome mining. Intriguingly, this analysis, combined with heterologous gene expression and metabolite identification, suggested that species from section Terrei use a strategy for UV protection different to other species from the genus Aspergillus. Section Terrei contains a complete plant polysaccharide degrading potential and an even higher cellulolytic potential than other Aspergilli, possibly facilitating additional applications for these species in biotechnology.

Details

Language :
English
ISSN :
2309608X and 17419182
Volume :
10
Issue :
7
Database :
Directory of Open Access Journals
Journal :
Journal of Fungi
Publication Type :
Academic Journal
Accession number :
edsdoj.965e40567a17419182833c65476fe7d3
Document Type :
article
Full Text :
https://doi.org/10.3390/jof10070507