Electron flow in hydrogenotrophic methanogens under nickel limitation.

Nomura, Shunsuke; San Segundo-Acosta, Pablo; Protasov, Evgenii; Kaneko, Masanori; Kahnt, Jörg; Murphy, Bonnie J; Shima, Seigo · Nature · 2025

basic_science · Level V

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Abstract

Methanogenic archaea are the main producers of the potent greenhouse gas methane<sup>1,2</sup>. In the methanogenic pathway from CO<sub>2</sub> and H<sub>2</sub> studied under laboratory conditions, low-potential electrons for CO<sub>2</sub> reduction are generated by a flavin-based electron-bifurcation reaction catalysed by heterodisulfide reductase (Hdr) complexed with the associated [NiFe]-hydrogenase (Mvh)<sup>3-5</sup>. F<sub>420</sub>-reducing [NiFe]-hydrogenase (Frh) provides electrons to the methanogenic pathway through the electron carrier F<sub>420</sub> (ref. <sup>6</sup>). Here we report that under strictly nickel-limited conditions, in which the nickel concentration is similar to those often observed in natural habitats<sup>7-11</sup>, the production of both [NiFe]-hydrogenases in Methanothermobacter marburgensis is strongly downregulated. The Frh reaction is substituted by a coupled reaction with [Fe]-hydrogenase (Hmd), and the role of Mvh is taken over by F<sub>420</sub>-dependent electron-donating proteins (Elp). Thus, Hmd provides all electrons for the reducing metabolism under these nickel-limited conditions. Biochemical and structural characterization of Elp-Hdr complexes confirms the electronic interaction between Elp and Hdr. The conservation of the genes encoding Elp and Hmd in CO<sub>2</sub>-reducing hydrogenotrophic methanogens suggests that the Hmd system is an alternative pathway for electron flow in CO<sub>2</sub>-reducing hydrogenotrophic methanogens under nickel-limited conditions.

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