Redox tuning of the H-cluster by second coordination sphere amino acids in the sensory [FeFe] hydrogenase from Thermotoga maritima

  • Chem Sci. 2023 Feb 27;14(13):3682-3692. doi: 10.1039/d2sc06432d.
Nipa Chongdar  1  2 Patricia Rodríguez-Maciá  1  3 Edward J Reijerse  1 Wolfgang Lubitz  1 Hideaki Ogata  4 James A Birrell  1  5
Affiliations
  • 1. Max Planck Institute for Chemical Energy Conversion Stiftstraße 34-36 45470 Mülheim an der Ruhr Germany [email protected].
  • 2. CSIR-National Institute of Oceanography Dona Paula-403004 Goa India.
  • 3. Department of Chemistry, Inorganic Chemistry Laboratory, University of Oxford South Parks Road Oxford OX1 3QR UK.
  • 4. Graduate School of Life Science, University of Hyogo Koto 3-2-1, Kamigori, Ako 678-1297 Hyogo Japan [email protected].
  • 5. School of Life Sciences, University of Essex Colchester CO4 3SQ UK [email protected].
Abstract

[FeFe] hydrogenases are exceptionally active catalysts for the interconversion of molecular hydrogen with protons and electrons. Their active site, the H-cluster, is composed of a [4Fe-4S] cluster covalently linked to a unique [2Fe] subcluster. These Enzymes have been extensively studied to understand how the protein environment tunes the properties of the Fe ions for efficient catalysis. The sensory [FeFe] hydrogenase (HydS) from Thermotoga maritima has low activity and displays a very positive redox potential for the [2Fe] subcluster compared to that of the highly active prototypical Enzymes. Using site directed mutagenesis, we investigate how second coordination sphere interactions of the protein environment with the H-cluster in HydS influence the catalytic, spectroscopic and redox properties of the H-cluster. In particular, mutation of the non-conserved serine 267, situated between the [4Fe-4S] and [2Fe] subclusters, to methionine (conserved in prototypical catalytic Enzymes) gave a dramatic decrease in activity. Infra-red (IR) spectroelectrochemistry revealed a 50 mV lower redox potential for the [4Fe-4S] subcluster in the S267M variant. We speculate that this serine forms a hydrogen bond to the [4Fe-4S] subcluster, increasing its redox potential. These results demonstrate the importance of the secondary coordination sphere in tuning the catalytic properties of the H-cluster in [FeFe] hydrogenases and reveal a particularly important role for Amino acids interacting with the [4Fe-4S] subcluster.