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Hiltunen Thoren, M.

Publications and source records attributed to Hiltunen Thoren, M..

2 recordsLinked to original sources

Elevated substitution rates and increased purifying selection associated with thermophily in Chaetomiaceae fungi

Understanding the genomic consequences of thermal adaptation in fungi is crucial, as rising global temperatures are expected to have negative impacts on food safety and human health. The family Chaetomiaceae contains a large number of thermophilic fungal taxa, but previous studies have reported inconsistent optimal growth temperatures (OGT) for the same strains, obtained with various laboratory methods. Here we applied a standardized laboratory approach to measure OGT across strains of 17 Chaetomiaceae species and used a phylogenomic approach to test associations between OGT, rates of genome evolution, and strength of purifying selection. Compared to mesophiles, thermophilic fungi showed faster nucleotide substitution rates. In addition, thermophiles showed lower dN/dS ratios than mesophiles, suggesting stronger purifying selection on conserved orthologs. We hypothesize that the elevated substitution rates are linked to high growth rates, as thermophilic fungi grew significantly faster than mesophilic ones. Our results show that selective pressures may act at different temperatures for distinct genomic characteristics. Genome size was lower at OGT [≥] 35{degrees}C compared to mesophilic species, while GC content did not show a large difference between mesophiles and thermotolerant species, but increased in thermophilic species with an OGT [≥] 45{degrees}C.

evolutionary biology↗

Patterns and drivers of genome-wide codon usage bias in the fungal order Sordariales

Here we present a study on amino acid composition, codon usage bias (CUB), and levels of selection driving codon usage in Sordariales fungi. We found that GC ending codons are used more often than AT ending codons in all Sordariales genomes, but the strength of CUB differs amongst families. The families Podosporaceae and Sordariaceae contain relatively low genome-wide levels of CUB, while the highest levels of CUB are found in Chaetomiaceae and the "BLLNS"-group, a monophyletic group of five other Sordariales families. Based on genomic clustering, and ancestral state reconstruction of GC nucleotides at the third codon position, we hypothesize that Podosporaceae and Sordariaceae represent the ancestral state of amino acid composition and CUB. The Chaetomiaceae and BLLNS have most likely diverged from this state, with increased natural selection driving use of specific codons, resulting in higher genome-wide CUB. We expect that the higher levels of CUB in Chaetomiaceae genomes might have been caused by ecological niche specialization, including high optimal growth temperature of some Chaetomiaceae species.

genomics↗