Theoretical investigation of aerobic and anaerobic oxidative inactivation of the [NiFe]-hydrogenase active site.

Raffaella Breglia, Claudio Greco, Piercarlo Fantucci, Luca De Gioia, Maurizio Bruschi

Journal: Physical chemistry chemical physics : PCCP 2018;20(3):1693-1706

PMID: 29264600

Abstract

The extraordinary capability of [NiFe]-hydrogenases to catalyse the reversible interconversion of protons and electrons into dihydrogen (H) has stimulated numerous experimental and theoretical studies addressing the direct utilization of these enzymes in H production processes. Unfortunately, the introduction of these natural H-catalysts in biotechnological applications is limited by their inhibition under oxidising (aerobic and anaerobic) conditions. With the aim of contributing to overcome this limitation, we studied the oxidative inactivation mechanism of [NiFe]-hydrogenases by performing Density Functional Theory (DFT) calculations on a very large model of their active site in which all the amino acids forming the first and second coordination spheres of the NiFe cluster have been explicitly included. We identified an O molecule and two HO molecules as sources of the two oxygen atoms that are inserted at the active site of the inactive forms of the enzyme (Ni-A and Ni-B) under aerobic and anaerobic conditions, respectively. Furthermore, our results support the experimental evidence that the Ni-A-to-Ni-B ratio strongly depends on the number of reducing equivalents available for the process and on the oxidizing conditions under which the reaction takes place.

Address: Department of Earth and Environmental Science, University of Milano Bicocca, Piazza della Scienza 1, 20126 Milan, Italy. [email protected].

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