Cobalamin-dependent methionine synthase: Probing the role of the axial base in catalysis of methyl transfer between methyltetrahydrofolate and exogenous Cob(I)alamin or Cob(I)inamide

被引:16
作者
Dorweiler, JS
Finke, RG
Matthews, RG [1 ]
机构
[1] Univ Michigan, Inst Life Sci, Div Biophys Res, Ann Arbor, MI 48109 USA
[2] Univ Michigan, Dept Biol Chem, Ann Arbor, MI 48109 USA
[3] Colorado State Univ, Dept Chem, Ft Collins, CO 80523 USA
关键词
D O I
10.1021/bi035525t
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Cobalamin-dependent methionine synthase (MetH) catalyzes the transfer of methyl groups between methyltetrahydrofolate (CH3-H(4)folate) and homocysteine, with the enzyme-bound cobalamin serving as an intermediary in the methyl transfers. An MetH fragment comprising residues 2-649 contains modules that bind and activate CH3-H(4)folate and homocysteine and catalyze methyl transfers to and from exogenous cobalamin. Comparison of the rates of reaction of cobalamin, which contains a dimethylbenzimidazole nucleotide coordinated to the cobalt in the lower axial position, and cobinamide, which lacks the dimethylbenzimidazole nucleotide, allows assessment of the degree of stabilization the dimethylbenzimidazole base provides for methyl transfer between CH3-H(4)folate bound to MetH(2-649) and exogenous cob(I)alamin. When the reactions of cob(I)alamin or cob(I)inamide with CH3-H(4)folate are compared, the observed second-order rate constants are 2.7-fold faster for cob(I)alamin; in the reverse direction, methylcobinamide reacts 35-fold faster than methylcobalamin with enzyme-bound tetrahydrofolate. These measurements can be used to estimate the influence of the dimethylbenzimidazole ligand on both the thermodynamics and kinetics of methyl transfer between methyltetrahydrofolate and cob(I)alamin or cob(I)inamide. The free energy change for methyl transfer from CH3-H(4)folate to cob(I)alamin is 2.8 kcal more favorable than that for methyl transfer to cob(I)inamide. Dimethylbenzimidazole contributes similar to0.6 kcal/mol of stabilization for the forward reaction and similar to2.2 kcal/mol of destabilization for the reverse reaction. Binding of methylcobalamin to full-length methionine synthase is accompanied by ligand substitution, and switching between "base-on" and "base-off" states of the cofactor has been demonstrated [Bandarian, V., et al. (2003) Proc. Natl. Acad. Sci. U.S.A. 100, 8156-8163]. The present results disfavor a major role for such switching in catalysis of methyl transfer, and are consistent with the hypothesis that the primary role of the ligand triad in methionine synthase is controlling the distribution of enzyme conformations during catalysis.
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页码:14653 / 14662
页数:10
相关论文
共 38 条
[1]  
Bandarian V, 2002, NAT STRUCT BIOL, V9, P53
[2]   Factors modulating conformational equilibria in large modular proteins: A case study with cobalamin-dependent methionine synthase [J].
Bandarian, V ;
Ludwig, ML ;
Matthews, RG .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (14) :8156-8163
[3]  
BANERJEE RV, 1989, J BIOL CHEM, V264, P13888
[4]  
COWAN DA, 1992, ACS SYM SER, V498, P86
[5]   Resonance Raman Co-C stretching frequencies reflect bond strength changes in alkyl cobalamins, but are unaffected by trans ligand substitution [J].
Dong, SL ;
Padmakumar, R ;
Banerjee, R ;
Spiro, TG .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1996, 118 (38) :9182-9183
[6]   Crystal structure of a methyltetrahydrofolate- and corrinoid-dependent methyltransferase [J].
Doukov, T ;
Seravalli, J ;
Stezowski, JJ ;
Ragsdale, SV .
STRUCTURE, 2000, 8 (08) :817-830
[7]   HOW A PROTEIN BINDS B-12 - A 3.0-ANGSTROM X-RAY STRUCTURE OF B-12-BINDING DOMAINS OF METHIONINE SYNTHASE [J].
DRENNAN, CL ;
HUANG, S ;
DRUMMOND, JT ;
MATTHEWS, RG ;
LUDWIG, ML .
SCIENCE, 1994, 266 (5191) :1669-1674
[8]   ASSIGNMENT OF ENZYMATIC FUNCTION TO SPECIFIC PROTEIN REGIONS OF COBALAMIN-DEPENDENT METHIONINE SYNTHASE FROM ESCHERICHIA-COLI [J].
DRUMMOND, JT ;
HUANG, S ;
BLUMENTHAL, RM ;
MATTHEWS, RG .
BIOCHEMISTRY, 1993, 32 (36) :9290-9295
[9]  
EVANS JC, 2003, IN PRESS P NATL ACAD
[10]  
Fersht A., 1985, ENZYME STRUCTURE MEC