Mechanism for catechol ring cleavage by non-heme iron intradiol dioxygenases: A hybrid DFT study

被引:72
作者
Borowski, Tomasz [1 ]
Siegbahn, Per E. M.
机构
[1] Stockholm Univ, Dept Phys, Stockholm Ctr Phys Astron & Biotechnol, S-10691 Stockholm, Sweden
[2] Polish Acad Sci, Inst Catalysis & Surface Chem, PL-30239 Krakow, Poland
关键词
D O I
10.1021/ja0641251
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The mechanism of the catalytic reaction of protocatechuate 3,4-dioxygenase (3,4-PCD), a representative intradiol dioxygenase, was studied with the hybrid density functional method B3LYP. First, a smaller model involving only the iron first-shell ligands (His460, His462, and Tyr408) and the substrates (catechol and dioxygen) was used to probe various a priori plausible reaction mechanisms. Then, an extended model involving also the most important second-shell groups (Arg457, Gln477, and Tyr479) was used for the refinement of the preselected mechanisms. The computational results suggest that the chemical reactions constituting the catalytic cycle of intradiol dioxygenases involve: (1) binding of the substrate as a dianion, in agreement with experimental suggestions, (2) binding of dioxygen to the metal aided by an electron transfer from the substrate to O-2, (3) formation of a bridging peroxo intermediate and its conformational change, which opens the coordination site trans to His462, (4) binding of a neutral XOH ligand (H2O or Tyr447) at the open site, (5) proton transfer from XOH to the neighboring peroxo ligand yielding the hydroperoxo intermediate, (6) a Criegee rearrangement leading to the anhydride intermediate, and (7) hydrolysis of the anhydride to the final acyclic product. One of the most important results obtained is that the Criegee mechanism requires an in-plane orientation of the four atoms (two oxygen and two carbon atoms) mainly involved in the reaction. This orientation yields a good overlap between the two sigma orbitals involved, C-C sigma and O-O sigma(star), allowing an efficient electron flow between them. Another interesting result is that under some conditions, a homolytic O-O bond cleavage might compete with the Criegee rearrangement. The role of the second-shell residues and the substituent effects are also discussed.
引用
收藏
页码:12941 / 12953
页数:13
相关论文
共 41 条
[1]   DENSITY-FUNCTIONAL THERMOCHEMISTRY .3. THE ROLE OF EXACT EXCHANGE [J].
BECKE, AD .
JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (07) :5648-5652
[2]   Catalytic reaction mechanism of homogentisate dioxygenase: A hybrid DFT study [J].
Borowski, T ;
Georgiev, V ;
Siegbahn, PEM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (49) :17303-17314
[3]   Biophysical analyses of designed and selected mutants of protocatechuate 3,4-dioxyogenase [J].
Brown, CK ;
Vetting, MW ;
Earhart, CA ;
Ohlendorf, DH .
ANNUAL REVIEW OF MICROBIOLOGY, 2004, 58 :555-585
[4]   Dioxygenase enzymes: catalytic mechanisms and chemical models [J].
Bugg, TDH .
TETRAHEDRON, 2003, 59 (36) :7075-7101
[5]  
Bugg TDH, 1998, NAT PROD REP, V15, P513
[6]   Oxygenases:: mechanisms and structural motifs for O2 activation [J].
Bugg, TDH .
CURRENT OPINION IN CHEMICAL BIOLOGY, 2001, 5 (05) :550-555
[7]  
BULL C, 1981, J BIOL CHEM, V256, P2681
[8]   Dioxygen activation at mononuclear nonheme iron active sites: Enzymes, models, and intermediates [J].
Costas, M ;
Mehn, MP ;
Jensen, MP ;
Que, L .
CHEMICAL REVIEWS, 2004, 104 (02) :939-986
[9]   Spectroscopic and electronic structure studies of protocatechuate 3,4-dioxygenase: Nature of tyrosinate-Fe(III) bonds and their contribution to reactivity [J].
Davis, MI ;
Orville, AM ;
Neese, F ;
Zaleski, JM ;
Lipscomb, JD ;
Solomon, EI .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (04) :602-614
[10]   CHEMICAL-STRUCTURE AND BIODEGRADABILITY OF HALOGENATED AROMATIC-COMPOUNDS - SUBSTITUENT EFFECTS ON 1,2-DIOXYGENATION OF CATECHOL [J].
DORN, E ;
KNACKMUSS, HJ .
BIOCHEMICAL JOURNAL, 1978, 174 (01) :85-94