Minimal and hybrid hydrogenases are active from archaea.

Greening, Chris; Cabotaje, Princess R; Valentin Alvarado, Luis E; Leung, Pok Man; Land, Henrik; Rodrigues-Oliveira, Thiago; Ponce-Toledo, Rafael I; Senger, Moritz et al. · Cell · 2024

basic_science · Level V

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Abstract

Microbial hydrogen (H<sub>2</sub>) cycling underpins the diversity and functionality of diverse anoxic ecosystems. Among the three evolutionarily distinct hydrogenase superfamilies responsible, [FeFe] hydrogenases were thought to be restricted to bacteria and eukaryotes. Here, we show that anaerobic archaea encode diverse, active, and ancient lineages of [FeFe] hydrogenases through combining analysis of existing and new genomes with extensive biochemical experiments. [FeFe] hydrogenases are encoded by genomes of nine archaeal phyla and expressed by H<sub>2</sub>-producing Asgard archaeon cultures. We report an ultraminimal hydrogenase in DPANN archaea that binds the catalytic H-cluster and produces H<sub>2</sub>. Moreover, we identify and characterize remarkable hybrid complexes formed through the fusion of [FeFe] and [NiFe] hydrogenases in ten other archaeal orders. Phylogenetic analysis and structural modeling suggest a deep evolutionary history of hybrid hydrogenases. These findings reveal new metabolic adaptations of archaea, streamlined H<sub>2</sub> catalysts for biotechnological development, and a surprisingly intertwined evolutionary history between the two major H<sub>2</sub>-metabolizing enzymes.

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