Mechanistic Studies of a Flavin Monooxygenase: Sulfur Oxidation of Dibenzothiophenes by DszC

被引:23
作者
Barbosa, Ana C. C. [1 ]
Neves, Rui P. P. [1 ]
Sousa, Sergio F. [1 ,2 ]
Ramos, Maria J. [1 ]
Fernandes, Pedro A. [1 ]
机构
[1] Univ Porto, Fac Ciencias, Dept Quim & Bioquim, UCIBIO,REQUIMTE, Rua Campo Alegre S-N, P-4169007 Porto, Portugal
[2] Univ Porto, Fac Med, Dept Biomed, UCIBIO REQUIMTE,BioSIM, Alameda Prof Hernani Monteiro, P-4200319 Porto, Portugal
关键词
biodesulfurization; oxygen activation; sulfur oxidation; flavin monoxygenase; quantum mechanics/molecular mechanics; MOLECULAR-ORBITAL METHODS; DENSITY-FUNCTIONAL THERMOCHEMISTRY; BASIS-SETS; MICROBIAL DESULFURIZATION; NONCOVALENT INTERACTIONS; DEPENDENT MONOOXYGENASE; PERTURBATION-THEORY; CRYSTAL-STRUCTURES; ELECTRON-TRANSFER; ACTIVE-SITES;
D O I
10.1021/acscatal.8b01877
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Flavin monoxygenases (FMOs) are enzymes of increasing biotechnological (e.g., crude oil biodesulfurization) and pharmacological (e.g., drug metabolism) interest that perform the oxidation of soft nucleophiles and play key roles in the excretion of xenobiotics or in sulfur amino acid metabolism. DszC is a key FMO involved in sulfur oxidation of dibenzothiophenes (DBTs) through the 4S metabolic pathway of some bacteria. This pathway can be a cheaper and greener alternative for sulfur removal, as DBTs are the major source of crude oil sulfur. Here, we investigate the reaction mechanism of DszC with quantum mechanics/molecular mechanics methods (SCS-MP2/def2-TZVPP:ff10//B3LYP/6-31G(d):ff10). We observe that the reaction mechanism of DBT oxidation occurs in three stages: (1) spin-forbidden formation of a C-4a-hydroperoxyflavin ((COOH)-O-4a) intermediate; (2) oxidation of DBT to DBTO, upon nucleophilic attack of the DBT-sulfur on the distal oxygen of (COOH)-O-4a; and (3) proton transfer from the (NH)-H-5 of the flavin group to the His92-imidazole via Ser163-hydroxyl, releasing a water molecule and oxidized flavin mononucleotide. The overall reaction is computed to be exergonic (-38.7 kcal-mol(-1)), and the rate-limiting step is the oxidation of DBT to DBTO (Delta G double dagger = 19.7 kcal.mol(-1), consistent with the experimental turnover of 1.6 min(-1)). We observe that oxygen activation is a nearly spontaneous process that occurs through a proton-coupled electron transfer to produce a hydroperoxyl radical, followed by a triplet-singlet spin-forbidden inversion to form the (COOH)-O-4a intermediate. In agreement with other studies, His391 is a key acid to activate O-2 and form the covalent bond. Further clarifying previous mutagenesis results, we also propose that His92 and Tyr96 are key residues for the mechanism: His92 acts as acid to deprotonate (NH)-H-5 in flavin via Ser163; and Tyr96 enhances the oxidation of DBT-sulfur by anchoring the proximal oxygen of (COOH)-O-4a, and acts as acid to form the water byproduct and regenerate the flavin cofactor. These are important results to clarify the chemistry of flavin monoxygenases and to open doors for the rational design of DszC mutants with improved catalytic activity.
引用
收藏
页码:9298 / 9311
页数:27
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