HGT in the human and skin commensal <i>Malassezia</i>: A bacterially derived flavohemoglobin is required for NO resistance and host interaction.

Ianiri, Giuseppe; Coelho, Marco A; Ruchti, Fiorella; Sparber, Florian; McMahon, Timothy J; Fu, Ci; Bolejack, Madison; Donovan, Olivia et al. · Proc Natl Acad Sci U S A · 2020

basic_science · Level V

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Abstract

The skin of humans and animals is colonized by commensal and pathogenic fungi and bacteria that share this ecological niche and have established microbial interactions. <i>Malassezia</i> are the most abundant fungal skin inhabitant of warm-blooded animals and have been implicated in skin diseases and systemic disorders, including Crohn's disease and pancreatic cancer. Flavohemoglobin is a key enzyme involved in microbial nitrosative stress resistance and nitric oxide degradation. Comparative genomics and phylogenetic analyses within the <i>Malassezia</i> genus revealed that flavohemoglobin-encoding genes were acquired through independent horizontal gene transfer events from different donor bacteria that are part of the mammalian microbiome. Through targeted gene deletion and functional complementation in <i>Malassezia sympodialis</i>, we demonstrated that bacterially derived flavohemoglobins are cytoplasmic proteins required for nitric oxide detoxification and nitrosative stress resistance under aerobic conditions. RNA-sequencing analysis revealed that endogenous accumulation of nitric oxide resulted in up-regulation of genes involved in stress response and down-regulation of the MalaS7 allergen-encoding genes. Solution of the high-resolution X-ray crystal structure of <i>Malassezia</i> flavohemoglobin revealed features conserved with both bacterial and fungal flavohemoglobins. In vivo pathogenesis is independent of <i>Malassezia</i> flavohemoglobin. Lastly, we identified an additional 30 genus- and species-specific horizontal gene transfer candidates that might have contributed to the evolution of this genus as the most common inhabitants of animal skin.

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