Genetic and genomic analysis of Malassezia reveals transitions in mating-type locus chromosomal organization and early steps in sexual reproduction.
Marco A CoelhoGiuseppe IaniriMarco A CoelhoBart TheelenRohit GoyalAswathy NarayananKaustuv SanyalTeun BoekhoutJoseph HeitmanPublished in: bioRxiv : the preprint server for biology (2023)
Fungi in the basidiomycete genus Malassezia are the most prevalent eukaryotic microbes resident on the skin of human and other warm-blooded animals and have been implicated in skin diseases and systemic disorders. Analysis of Malassezia genomes revealed that key adaptations to the skin microenvironment have a direct genomic basis, and the identification of mating and meiotic genes suggests a capacity to reproduce sexually, even though no sexual cycle has been as yet observed. In contrast to other bipolar or tetrapolar basidiomycetes that have either two linked mating-type-determining ( MAT ) loci or two MAT loci on separate chromosomes, in Malassezia species studied thus far the two MAT loci are arranged in a pseudobipolar configuration (linked on the same chromosome but capable of recombining). By incorporating newly-generated chromosome-level genome assemblies, and an improved Malassezia phylogeny, we infer that the pseudobipolar arrangement was the ancestral state of this group and revealed six independent transitions to tetrapolarity, seemingly driven by centromere fission or translocations in centromere-flanking regions. Additionally, in an approach to uncover a sexual cycle, Malassezia furfur strains were engineered to express different MAT alleles in the same cell. The resulting strains produce hyphae reminiscent of early steps in sexual development and display upregulation of genes associated with sexual development as well as others encoding lipases and a protease potentially relevant for pathogenesis of the fungus. Our study reveals a previously unseen genomic relocation of mating-type loci in fungi and provides insight towards the discovery of a sexual cycle in Malassezia , with possible implications for pathogenicity.
Keyphrases
- genome wide
- copy number
- mental health
- genome wide association study
- dna methylation
- single cell
- escherichia coli
- endothelial cells
- small molecule
- stem cells
- magnetic resonance imaging
- signaling pathway
- gene expression
- cell proliferation
- cystic fibrosis
- poor prognosis
- long non coding rna
- genome wide association
- high intensity
- quality improvement