Login / Signup

Proton-Coupled Reduction of the Catalytic [4Fe-4S] Cluster in [FeFe]-Hydrogenases.

Moritz SengerKonstantin LaunFlorian WittkampJifu DuanMichael HaumannThomas HappeMartin WinklerUlf-Peter ApfelSven Timo Stripp
Published in: Angewandte Chemie (International ed. in English) (2017)
In nature, [FeFe]-hydrogenases catalyze the uptake and release of molecular hydrogen (H2 ) at a unique iron-sulfur cofactor. The absence of an electrochemical overpotential in the H2 release reaction makes [FeFe]-hydrogenases a prime example of efficient biocatalysis. However, the molecular details of hydrogen turnover are not yet fully understood. Herein, we characterize the initial one-electron reduction of [FeFe]-hydrogenases by infrared spectroscopy and electrochemistry and present evidence for proton-coupled electron transport during the formation of the reduced state Hred'. Charge compensation stabilizes the excess electron at the [4Fe-4S] cluster and maintains a conservative configuration of the diiron site. The role of Hred' in hydrogen turnover and possible implications on the catalytic mechanism are discussed. We propose that regulation of the electronic properties in the periphery of metal cofactors is key to orchestrating multielectron processes.
Keyphrases
  • electron transfer
  • visible light
  • solar cells
  • bone mineral density
  • gold nanoparticles
  • electron microscopy
  • single molecule
  • metal organic framework
  • high resolution
  • tandem mass spectrometry
  • transition metal