TY - JOUR
T1 - Structural differences of oxidized iron-sulfur and nickel-iron cofactors in O2-tolerant and O2-sensitive hydrogenases studied by X-ray absorption spectroscopy
AU - Sigfridsson, Kajsa G.V.
AU - Leidel, Nils
AU - Sanganas, Oliver
AU - Chernev, Petko
AU - Lenz, Oliver
AU - Yoon, Ki Seok
AU - Nishihara, Hirofumi
AU - Parkin, Alison
AU - Armstrong, Fraser A.
AU - Dementin, Sébastien
AU - Rousset, Marc
AU - De Lacey, Antonio L.
AU - Haumann, Michael
N1 - Funding Information:
M.H. thanks the Deutsche Forschungsgemeinschaft (DFG) for a Heisenberg Fellowship and the DFG (grants Ha3265/3-1 and Ha3265/6-1 ) and the Bundesministerium für Bildung und Wissenschaft (grant 05K14KE1 within the Röntgen-Angström Cluster) for the financial support. A.L.D.L thanks MINECO (project CTQ2012-32448 ) for the financial support. F.A.A. is a Royal Society Wolfson Research Merit Award holder. We thank the beamline scientists F. Schäfers (BESSY at HZB, Berlin), W. Meyer-Klaucke (EMBL at DESY, Hamburg), B. Bilsborough (SRS at Daresbury, UK), and S. Mangold (ANKA at KIT, Karlsruhe) for the technical assistance and H. Dau (FU-Berlin) for providing access to XAS equipment at BESSY. We thank J. Fritsch (Humboldt Universität zu Berlin) for the preparation of the Re MBH samples and P. Infossi and M.-T. Giudici-Orticoni (CNRS Marseille) for generously providing the A. aeolicus protein.
Publisher Copyright:
© 2014 Elsevier B.V. All rights reserved.
PY - 2015/2
Y1 - 2015/2
N2 - The class of [NiFe]-hydrogenases comprises oxygen-sensitive periplasmic (PH) and oxygen-tolerant membrane-bound (MBH) enzymes. For three PHs and four MBHs from six bacterial species, structural features of the nickel-iron active site of hydrogen turnover and of the iron-sulfur clusters functioning in electron transfer were determined using X-ray absorption spectroscopy (XAS). Fe-XAS indicated surplus oxidized iron and a lower number of ∼ 2.7 Å Fe-Fe distances plus additional shorter and longer distances in the oxidized MBHs compared to the oxidized PHs. This supported a double-oxidized and modified proximal FeS cluster in all MBHs with an apparent trimer-plus-monomer arrangement of its four iron atoms, in agreement with crystal data showing a [4Fe3S] cluster instead of a [4Fe4S] cubane as in the PHs. Ni-XAS indicated coordination of the nickel by the thiol group sulfurs of four conserved cysteines and at least one iron-oxygen bond in both MBH and PH proteins. Structural differences of the oxidized inactive [NiFe] cofactor of MBHs in the Ni-B state compared to PHs in the Ni-A state included a ∼ 0.05 Å longer Ni-O bond, a two times larger spread of the Ni-S bond lengths, and a ∼ 0.1 Å shorter Ni-Fe distance. The modified proximal [4Fe3S] cluster, weaker binding of the Ni-Fe bridging oxygen species, and an altered localization of reduced oxygen species at the active site may each contribute to O2 tolerance.
AB - The class of [NiFe]-hydrogenases comprises oxygen-sensitive periplasmic (PH) and oxygen-tolerant membrane-bound (MBH) enzymes. For three PHs and four MBHs from six bacterial species, structural features of the nickel-iron active site of hydrogen turnover and of the iron-sulfur clusters functioning in electron transfer were determined using X-ray absorption spectroscopy (XAS). Fe-XAS indicated surplus oxidized iron and a lower number of ∼ 2.7 Å Fe-Fe distances plus additional shorter and longer distances in the oxidized MBHs compared to the oxidized PHs. This supported a double-oxidized and modified proximal FeS cluster in all MBHs with an apparent trimer-plus-monomer arrangement of its four iron atoms, in agreement with crystal data showing a [4Fe3S] cluster instead of a [4Fe4S] cubane as in the PHs. Ni-XAS indicated coordination of the nickel by the thiol group sulfurs of four conserved cysteines and at least one iron-oxygen bond in both MBH and PH proteins. Structural differences of the oxidized inactive [NiFe] cofactor of MBHs in the Ni-B state compared to PHs in the Ni-A state included a ∼ 0.05 Å longer Ni-O bond, a two times larger spread of the Ni-S bond lengths, and a ∼ 0.1 Å shorter Ni-Fe distance. The modified proximal [4Fe3S] cluster, weaker binding of the Ni-Fe bridging oxygen species, and an altered localization of reduced oxygen species at the active site may each contribute to O2 tolerance.
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U2 - 10.1016/j.bbabio.2014.06.011
DO - 10.1016/j.bbabio.2014.06.011
M3 - Article
C2 - 25316302
AN - SCOPUS:84911869446
SN - 0005-2728
VL - 1847
SP - 162
EP - 170
JO - Biochimica et Biophysica Acta - Bioenergetics
JF - Biochimica et Biophysica Acta - Bioenergetics
IS - 2
ER -