Anaerobic Formate and Hydrogen Metabolism

Author:

Pinske Constanze1,Sawers R. Gary2

Affiliation:

1. Institute of Biology/Microbiology, Martin Luther University, Halle-Wittenberg, 06120 Halle, Germany

2. Institute of Biology/Microbiology, Martin Luther University Halle-Wittenberg, 06120 Halle, Germany

Abstract

Numerous recent developments in the biochemistry, molecular biology, and physiology of formate and H 2 metabolism and of the [NiFe]-hydrogenase (Hyd) cofactor biosynthetic machinery are highlighted. Formate export and import by the aquaporin-like pentameric formate channel FocA is governed by interaction with pyruvate formate-lyase, the enzyme that generates formate. Formate is disproportionated by the reversible formate hydrogenlyase (FHL) complex, which has been isolated, allowing biochemical dissection of evolutionary parallels with complex I of the respiratory chain. A recently identified sulfido-ligand attached to Mo in the active site of formate dehydrogenases led to the proposal of a modified catalytic mechanism. Structural analysis of the homologous, H 2 -oxidizing Hyd-1 and Hyd-5 identified a novel proximal [4Fe-3S] cluster in the small subunit involved in conferring oxygen tolerance to the enzymes. Synthesis of Salmonella Typhimurium Hyd-5 occurs aerobically, which is novel for an enterobacterial Hyd. The O 2 -sensitive Hyd-2 enzyme has been shown to be reversible: it presumably acts as a conformational proton pump in the H 2 -oxidizing mode and is capable of coupling reverse electron transport to drive H 2 release. The structural characterization of all the Hyp maturation proteins has given new impulse to studies on the biosynthesis of the Fe(CN) 2 CO moiety of the [NiFe] cofactor. It is synthesized on a Hyp-scaffold complex, mainly comprising HypC and HypD, before insertion into the apo-large subunit. Finally, clear evidence now exists indicating that Escherichia coli can mature Hyd enzymes differentially, depending on metal ion availability and the prevailing metabolic state. Notably, Hyd-3 of the FHL complex takes precedence over the H 2 -oxidizing enzymes.

Publisher

American Society for Microbiology

Subject

Microbiology

Reference299 articles.

1. Schuchmann K Müller V. 2013. Direct and reversible hydrogenation of CO 2 to formate by a bacterial carbon dioxide reductase. Science 342: 1382–1385. [PubMed][CrossRef]

2. Pinske C Sargent F. 2 May 2016. Exploring the directionality of Escherichia coli formate hydrogenlyase: a membrane-bound enzyme capable of fixing carbon dioxide to organic acid. Microbiologyopen doi:10.1002/mbo3.365. [CrossRef]

3. Maeda T Sanchez-Torres V Wood TK. 2008. Metabolic engineering to enhance bacterial hydrogen production. Microb Biotechnol 1: 30–39. [PubMed]

4. Sargent F. 2016. The Model [NiFe]-Hydrogenases of Escherichia coli . Adv Microb Physiol 68: 433–507. [PubMed][CrossRef]

5. Sawers RG Clark DP. 2004. Fermentative pyruvate and acetyl-coenzyme a metabolism. Ecosal Plus doi:10.1128/ecosalplus.3.5.3. [PubMed][CrossRef]

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