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Chloride- and Hydrosulfide-Bound 2Fe Complexes as Models of the Oxygen-Stable State of [FeFe] Hydrogenase.
Liu, Yu-Chiao; Chu, Kai-Ti; Wang, Hong-Ru; Lee, Gene-Hsiang; Tseng, Mei-Chun; Wang, Cheng-Hsin; Horng, Yih-Chern; Chiang, Ming-Hsi.
Afiliação
  • Liu YC; Institute of Chemistry, Academia Sinica, Nankang, Taipei, 115, Taiwan.
  • Chu KT; Institute of Chemistry, Academia Sinica, Nankang, Taipei, 115, Taiwan.
  • Wang HR; Institute of Chemistry, Academia Sinica, Nankang, Taipei, 115, Taiwan.
  • Lee GH; Instrumentation Center, National Taiwan University, Taipei, 106, Taiwan.
  • Tseng MC; Institute of Chemistry, Academia Sinica, Nankang, Taipei, 115, Taiwan.
  • Wang CH; Institute of Chemistry, Academia Sinica, Nankang, Taipei, 115, Taiwan.
  • Horng YC; Department of Chemistry, National Changhua University of Education, Changhua, 500, Taiwan.
  • Chiang MH; Institute of Chemistry, Academia Sinica, Nankang, Taipei, 115, Taiwan.
Angew Chem Int Ed Engl ; : e202408142, 2024 May 31.
Article em En | MEDLINE | ID: mdl-38818643
ABSTRACT
[FeFe] hydrogenases demonstrate remarkable catalytic efficiency in hydrogen evolution and oxidation processes. However, susceptibility of these enzymes to oxygen-induced degradation impedes their practical deployment in hydrogen-production devices and fuel cells. Recent investigations into the oxygen-stable (Hinact) state of the H-cluster revealed its inherent capacity to resist oxygen degradation. Herein, we present findings on Cl- and SH-bound [2Fe-2S] complexes, bearing relevance to the oxygen-stable state within a biological context. A characteristic attribute of these complexes is the terminal Cl-/SH- ligation to the iron center bearing the CO bridge. Structural analysis of the t-Cl demonstrates a striking resemblance to the Hinact state of DdHydAB and CbA5H. The t-Cl/t-SH exhibit reversible oxidation, with both redox species, electronically, being the first biomimetic analogs to the Htrans and Hinact states. These complexes exhibit notable resistance against oxygen-induced decomposition, supporting the potential oxygen-resistant nature of the Htrans and Hinact states. The swift reductive release of the Cl-/SH-group demonstrates its labile and kinetically controlled binding. The findings garnered from these investigations offer valuable insights into properties of the enzymatic O2-stable state, and key factors governing deactivation and reactivation conversion. This work contributes to the advancement of bio-inspired molecular catalysts and the integration of enzymes and artificial catalysts into H2-evolution devices and fuel-cell applications.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article