Literature DB >> 17291118

Sulfur K-edge spectroscopic investigation of second coordination sphere effects in oxomolybdenum-thiolates: relationship to molybdenum-cysteine covalency and electron transfer in sulfite oxidase.

Katrina Peariso1, Matthew E Helton, Eileen N Duesler, Susan E Shadle, Martin L Kirk.   

Abstract

Second-coordination sphere effects such as hydrogen bonding and steric constraints that provide for specific geometric configurations play a critical role in tuning the electronic structure of metalloenzyme active sites and thus have a significant effect on their catalytic efficiency. Crystallographic characterization of vertebrate and plant sulfite oxidase (SO) suggests that an average O(oxo)-Mo-S(Cys)-C dihedral angle of approximately 77 degrees exists at the active site of these enzymes. This angle is slightly more acute (approximately 72 degrees) in the bacterial sulfite dehydrogenase (SDH) from Starkeya novella. Here we report the synthesis, crystallographic, and electronic structural characterization of Tp*MoO(mba) (where Tp* = (3,5-dimethyltrispyrazol-1-yl)borate; mba = 2-mercaptobenzyl alcohol), the first oxomolybdenum monothiolate to possess an O(ax)-Mo-S(thiolate)-C dihedral angle of approximately 90 degrees . Sulfur X-ray absorption spectroscopy clearly shows that O(ax)-Mo-S(thiolate)-C dihedral angles near 90 degrees effectively eliminate covalency contributions to the Mo(xy) redox orbital from the thiolate sulfur. Sulfur K-pre-edge X-ray absorption spectroscopy intensity ratios for the spin-allowed S(1s) --> Sv(p) + Mo(xy) and S(1s) --> Sv(p) + Mo(xz,yz) transitions have been calibrated by a direct comparison of theory with experiment to yield thiolate Sv(p) orbital contributions, c(j)(2), to the Mo(xy) redox orbital and the Mo(xz,yz) orbital set. Furthermore, these intensity ratios are related to a second coordination sphere structural parameter, the O(oxo)-Mo-S(thiolate)-C dihedral angle. The relationship between Mo-S(thiolate) and Mo-S(dithiolene) covalency in oxomolydenum systems is discussed, particularly with respect to electron-transfer regeneration in SO.

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Year:  2007        PMID: 17291118     DOI: 10.1021/ic061150z

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  9 in total

1.  Addressing Ligand-Based Redox in Molybdenum-Dependent Methionine Sulfoxide Reductase.

Authors:  Laura J Ingersol; Jing Yang; Khadanand Kc; Amrit Pokhrel; Andrei V Astashkin; Joel H Weiner; Christopher A Johnston; Martin L Kirk
Journal:  J Am Chem Soc       Date:  2020-01-28       Impact factor: 15.419

2.  Pulsed electron paramagnetic resonance spectroscopy of (33)S-labeled molybdenum cofactor in catalytically active bioengineered sulfite oxidase.

Authors:  Eric L Klein; Abdel Ali Belaidi; Arnold M Raitsimring; Amanda C Davis; Tobias Krämer; Andrei V Astashkin; Frank Neese; Günter Schwarz; John H Enemark
Journal:  Inorg Chem       Date:  2014-01-03       Impact factor: 5.165

3.  Spectroscopic and electronic structure studies probing covalency contributions to C-H bond activation and transition-state stabilization in xanthine oxidase.

Authors:  Joseph Sempombe; Benjamin Stein; Martin L Kirk
Journal:  Inorg Chem       Date:  2011-10-05       Impact factor: 5.165

4.  Spectroscopic characterization of YedY: the role of sulfur coordination in a Mo(V) sulfite oxidase family enzyme form.

Authors:  Jing Yang; Richard Rothery; Joseph Sempombe; Joel H Weiner; Martin L Kirk
Journal:  J Am Chem Soc       Date:  2009-11-04       Impact factor: 15.419

5.  Molybdenum and Tungsten Cofactors and the Reactions They Catalyze.

Authors:  Martin L Kirk; Khadanand Kc
Journal:  Met Ions Life Sci       Date:  2020-03-23

6.  Implications of Pyran Cyclization and Pterin Conformation on Oxidized Forms of the Molybdenum Cofactor.

Authors:  Douglas R Gisewhite; Jing Yang; Benjamin R Williams; Alisha Esmail; Benjamin Stein; Martin L Kirk; Sharon J N Burgmayer
Journal:  J Am Chem Soc       Date:  2018-10-02       Impact factor: 15.419

7.  The active site structure and catalytic mechanism of arsenite oxidase.

Authors:  Thomas P Warelow; M Jake Pushie; Julien J H Cotelesage; Joanne M Santini; Graham N George
Journal:  Sci Rep       Date:  2017-05-11       Impact factor: 4.379

8.  Sulfur K-edge X-ray absorption spectroscopy and density functional theory calculations on monooxo Mo(IV) and bisoxo Mo(VI) bis-dithiolenes: insights into the mechanism of oxo transfer in sulfite oxidase and its relation to the mechanism of DMSO reductase.

Authors:  Yang Ha; Adam L Tenderholt; Richard H Holm; Britt Hedman; Keith O Hodgson; Edward I Solomon
Journal:  J Am Chem Soc       Date:  2014-06-13       Impact factor: 15.419

9.  Metal-Dithiolene Bonding Contributions to Pyranopterin Molybdenum Enzyme Reactivity.

Authors:  Jing Yang; John H Enemark; Martin L Kirk
Journal:  Inorganics (Basel)       Date:  2020-03-05
  9 in total

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