Hydrogenases from Methanogenic Archaea, Nickel, a Novel Cofactor, and H2 Storage

Author:

Thauer Rudolf K.,Kaster Anne-Kristin,Goenrich Meike,Schick Michael,Hiromoto Takeshi,Shima Seigo1

Affiliation:

1. Max Planck Institute for Terrestrial Microbiology, D-35043 Marburg, Germany;

Abstract

Most methanogenic archaea reduce CO2 with H2 to CH4. For the activation of H2, they use different [NiFe]-hydrogenases, namely energy-converting [NiFe]-hydrogenases, heterodisulfide reductase-associated [NiFe]-hydrogenase or methanophenazine-reducing [NiFe]-hydrogenase, and F420-reducing [NiFe]-hydrogenase. The energy-converting [NiFe]-hydrogenases are phylogenetically related to complex I of the respiratory chain. Under conditions of nickel limitation, some methanogens synthesize a nickel-independent [Fe]-hydrogenase (instead of F420-reducing [NiFe]-hydrogenase) and by that reduce their nickel requirement. The [Fe]-hydrogenase harbors a unique iron-guanylylpyridinol cofactor (FeGP cofactor), in which a low-spin iron is ligated by two CO, one C(O)CH2-, one S-CH2-, and a sp2-hybridized pyridinol nitrogen. Ligation of the iron is thus similar to that of the low-spin iron in the binuclear active-site metal center of [NiFe]- and [FeFe]-hydrogenases. Putative genes for the synthesis of the FeGP cofactor have been identified. The formation of methane from 4 H2 and CO2 catalyzed by methanogenic archaea is being discussed as an efficient means to store H2.

Publisher

Annual Reviews

Subject

Biochemistry

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