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AbstractBackgroundAspergillusspp. comprises a very diverse group of lower eukaryotes with a high relevance for industrial applications and clinical implications. These multinucleate species are often cultured for many generations in the laboratory, which can unknowingly propagate hidden genetic mutations. To assess the likelihood of such events, we studied the genome stability of aspergilli by using a combination of mutation accumulation (MA) lines and whole genome sequencing.ResultsWe sequenced the whole genomes of 30 asexual and 10 sexual MA lines of threeAspergillusspecies (A. flavus,A. fumigatusandA. nidulans) and estimated that each MA line accumulated mutations for over 4000 mitoses during asexual cycles. We estimated mutation rates of 4.2 × 10−11(A. flavus), 1.1 × 10−11(A. fumigatus) and 4.1 × 10−11(A. nidulans) per site per mitosis, suggesting that the genomes are very robust. Unexpectedly, we found a very high rate of GC → TA transversions only inA. flavus. In parallel, 30 asexual lines of the non-homologous end-joining (NHEJ) mutants of the three species were also allowed to accumulate mutations for the same number of mitoses. Sequencing of these NHEJ MA lines gave an estimated mutation rate of 5.1 × 10−11(A. flavus), 2.2 × 10−11(A. fumigatus) and 4.5 × 10−11(A. nidulans) per base per mitosis, which is slightly higher than in the wild-type strains and some ~ 5–6 times lower than in the yeasts. Additionally, inA. nidulans, we found a NHEJ-dependent interference of the sexual cycle that is independent of the accumulation of mutations.ConclusionsWe present for the first time direct counts of the mutation rate of filamentous fungal species and find thatAspergillusgenomes are very robust. Deletion of the NHEJ machinery results in a slight increase in the mutation rate, but at a rate we suggest is still safe to use for biotechnology purposes. Unexpectedly, we found GC→TA transversions predominated only in the speciesA. flavus, which could be generated by the hepatocarcinogen secondary metabolite aflatoxin. Lastly, a strong effect of the NHEJ mutation in self-crossing was observed and an increase in the mutations of the asexual lines was quantified.
570, Fungal (mesh), QH301-705.5, Non-homologous end-joining, 610, ku70, Biotechnology (rcdc), 2.2 Factors relating to the physical environment (hrcs-rac), Microbiology, 3105 Genetics (for-2020), Genome stability, Aflatoxin, Genetics, 2.2 Factors relating to the physical environment, Biology (General), Mutation accumulating lines, Aspergillus flavus (mesh), Developmental Biology (science-metrix), 31 Biological Sciences (for-2020), Genome, Mutation (mesh), 3107 Microbiology (for-2020), Genetics (rcdc), Human Genome, Chromosome Mapping, Biological Sciences, Human Genome (rcdc), Infectious Diseases, Fungal, Aspergillus, Infectious Diseases (rcdc), Mutation, Genome, Fungal, Biotechnology, Developmental Biology, Chromosome Mapping (mesh), Research Article, Aspergillus flavus
570, Fungal (mesh), QH301-705.5, Non-homologous end-joining, 610, ku70, Biotechnology (rcdc), 2.2 Factors relating to the physical environment (hrcs-rac), Microbiology, 3105 Genetics (for-2020), Genome stability, Aflatoxin, Genetics, 2.2 Factors relating to the physical environment, Biology (General), Mutation accumulating lines, Aspergillus flavus (mesh), Developmental Biology (science-metrix), 31 Biological Sciences (for-2020), Genome, Mutation (mesh), 3107 Microbiology (for-2020), Genetics (rcdc), Human Genome, Chromosome Mapping, Biological Sciences, Human Genome (rcdc), Infectious Diseases, Fungal, Aspergillus, Infectious Diseases (rcdc), Mutation, Genome, Fungal, Biotechnology, Developmental Biology, Chromosome Mapping (mesh), Research Article, Aspergillus flavus
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