Second and Outer Coordination Sphere Effects in Nitrogenase, Hydrogenase, Formate Dehydrogenase, and CO Dehydrogenase.

Sven T Stripp, Benjamin R Duffus, Vincent Fourmond, Christophe Léger, Silke Leimkühler, Shun Hirota, Yilin Hu, Andrew Jasniewski, Hideaki Ogata, Markus W Ribbe

Journal: Chemical reviews 2022;122(14):11900-11973

PMID: 35849738

Abstract

Gases like H, N, CO, and CO are increasingly recognized as critical feedstock in "green" energy conversion and as sources of nitrogen and carbon for the agricultural and chemical sectors. However, the industrial transformation of N, CO, and CO and the production of H require significant energy input, which renders processes like steam reforming and the Haber-Bosch reaction economically and environmentally unviable. Nature, on the other hand, performs similar tasks efficiently at ambient temperature and pressure, exploiting gas-processing metalloenzymes (GPMs) that bind low-valent metal cofactors based on iron, nickel, molybdenum, tungsten, and sulfur. Such systems are studied to understand the biocatalytic principles of gas conversion including N fixation by nitrogenase and H production by hydrogenase as well as CO and CO conversion by formate dehydrogenase, carbon monoxide dehydrogenase, and nitrogenase. In this review, we emphasize the importance of the cofactor/protein interface, discussing how second and outer coordination sphere effects determine, modulate, and optimize the catalytic activity of GPMs. These may comprise ionic interactions in the second coordination sphere that shape the electron density distribution across the cofactor, hydrogen bonding changes, and allosteric effects. In the outer coordination sphere, proton transfer and electron transfer are discussed, alongside the role of hydrophobic substrate channels and protein structural changes. Combining the information gained from structural biology, enzyme kinetics, and various spectroscopic techniques, we aim toward a comprehensive understanding of catalysis beyond the first coordination sphere.

Address: Freie Universität Berlin, Experimental Molecular Biophysics, Berlin 14195, Germany.; University of Potsdam, Molecular Enzymology, Potsdam 14476, Germany.; Laboratoire de Bioénergétique et Ingénierie des Protéines, Institut de Microbiologie de la Méditerranée, Institut Microbiologie, Bioénergies et Biotechnologie, CNRS, Aix Marseille Université, Marseille 13402, France.; Nara Institute of Science and Technology, Division of Materials Science, Graduate School of Science and Technology, Nara 630-0192, Japan.; Department of Molecular Biology & Biochemistry, University of California, Irvine, California 92697-3900, United States.; Nara Institute of Science and Technology, Division of Materials Science, Graduate School of Science and Technology, Nara 630-0192, Japan.; Hokkaido University, Institute of Low Temperature Science, Sapporo 060-0819, Japan.; Graduate School of Science, University of Hyogo, Hyogo 678-1297, Japan.; Department of Molecular Biology & Biochemistry, University of California, Irvine, California 92697-3900, United States.; Department of Chemistry, University of California, Irvine, California 92697-2025, United States.
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