Hydrogen-based metabolism as an ancestral trait in lineages sibling to the Cyanobacteria.

Matheus Carnevali, Paula B; Schulz, Frederik; Castelle, Cindy J; Kantor, Rose S; Shih, Patrick M; Sharon, Itai; Santini, Joanne M; Olm, Matthew R et al. · Nat Commun · 2019

basic_science · Level V

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Abstract

The evolution of aerobic respiration was likely linked to the origins of oxygenic Cyanobacteria. Close phylogenetic neighbors to Cyanobacteria, such as Margulisbacteria (RBX-1 and ZB3), Saganbacteria (WOR-1), Melainabacteria and Sericytochromatia, may constrain the metabolic platform in which aerobic respiration arose. Here, we analyze genomic sequences and predict that sediment-associated Margulisbacteria have a fermentation-based metabolism featuring a variety of hydrogenases, a streamlined nitrogenase, and electron bifurcating complexes involved in cycling of reducing equivalents. The genomes of ocean-associated Margulisbacteria encode an electron transport chain that may support aerobic growth. Some Saganbacteria genomes encode various hydrogenases, and others may be able to use O<sub>2</sub> under certain conditions via a putative novel type of heme copper O<sub>2</sub> reductase. Similarly, Melainabacteria have diverse energy metabolisms and are capable of fermentation and aerobic or anaerobic respiration. The ancestor of all these groups may have been an anaerobe in which fermentation and H<sub>2</sub> metabolism were central metabolic features. The ability to use O<sub>2</sub> as a terminal electron acceptor must have been subsequently acquired by these lineages.

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