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Microbial eukaryotes have adapted to hypoxia by horizontal acquisitions of a gene involved in rhodoquinone biosynthesis.

Courtney W Stairs | Laura Eme | Sergio A Muñoz-Gómez | Alejandro Cohen | Graham Dellaire | Jennifer N Shepherd | James P Fawcett | Andrew J Roger
eLife | 2018

Under hypoxic conditions, some organisms use an electron transport chain consisting of only complex I and II (CII) to generate the proton gradient essential for ATP production. In these cases, CII functions as a fumarate reductase that accepts electrons from a low electron potential quinol, rhodoquinol (RQ). To clarify the origins of RQ-mediated fumarate reduction in eukaryotes, we investigated the origin and function of rquA, a gene encoding an RQ biosynthetic enzyme. RquA is very patchily distributed across eukaryotes and bacteria adapted to hypoxia. Phylogenetic analyses suggest lateral gene transfer (LGT) of rquA from bacteria to eukaryotes occurred at least twice and the gene was transferred multiple times amongst protists. We demonstrate that RquA functions in the mitochondrion-related organelles of the anaerobic protist Pygsuia and is correlated with the presence of RQ. These analyses reveal the role of gene transfer in the evolutionary remodeling of mitochondria in adaptation to hypoxia.

Pubmed ID: 29697049

Research resources used in this publication

None found

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None found

Associated grants

  • Agency: CIHR, Canada
    Id: MOP 341174
  • Agency: CIHR, Canada
    Id: MOP 142349
  • Agency: NIGMS NIH HHS, United States
    Id: R15 GM096398
  • Agency: NIH HHS, United States
    Id: 1R15GM096398-01

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