A quantum-mechanical study of the reaction mechanism of sulfite oxidase

被引:0
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作者
Marie-Céline van Severen
Milica Andrejić
Jilai Li
Kerstin Starke
Ricardo A. Mata
Ebbe Nordlander
Ulf Ryde
机构
[1] Chemical Centre,Theoretical Chemistry, Department of Chemistry
[2] Lund University,Institut für Physikalische Chemie
[3] Universität Göttingen,State Key Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry
[4] Jilin University,Chemical Physics, Department of Chemistry
[5] Chemical Centre,undefined
[6] Lund University,undefined
关键词
Molybdenum; Sulfite oxidase; Quantum mechanics; Density functional theory; Coupled-cluster calculations; CCSD(T);
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摘要
The oxidation of sulfite to sulfate by two different models of the active site of sulfite oxidase has been studied. Both protonated and deprotonated substrates were tested. Geometries were optimized with density functional theory (TPSS/def2-SV(P)) and energies were calculated either with hybrid functionals and large basis sets (B3LYP/def2-TZVPD) including corrections for dispersion, solvation, and entropy, or with coupled-cluster theory (LCCSD(T0)) extrapolated toward a complete basis set. Three suggested reaction mechanisms have been compared and the results show that the lowest barriers are obtained for a mechanism where the substrate attacks a Mo-bound oxo ligand, directly forming a Mo-bound sulfate complex, which then dissociates into the products. Such a mechanism is more favorable than mechanisms involving a Mo–sulfite complex with the substrate coordinating either by the S or O atom. The activation energy is dominated by the Coulomb repulsion between the Mo complex and the substrate, which both have a negative charge of −1 or −2.
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页码:1165 / 1179
页数:14
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