How dihydrofolate reductase facilitates protonation of dihydrofolate

被引:44
作者
Rod, TH [1 ]
Brooks, CL [1 ]
机构
[1] Scripps Res Inst, Dept Mol Biol, La Jolla, CA 92037 USA
关键词
D O I
10.1021/ja035272r
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Dihydrofolate Reductase (DHFR) catalyzes the reduction of dihydrofolate (H2F) to tetrahydrofolate. On the basis of 10-12.5 ns molecular dynamics simulations of two conformations (closed and occluded) of the ternary DHFR/NADPH/H2F complex from Escherichia coli and a free energy perturbation approach, we have calculated the pKa value for the N5 atom in H2F. Our results suggest that the N5 atom in H2F is responsible for the pH dependency of the catalyzed reaction, meaning that DHFR facilitates protonation of H2F by approximately 4 pKa units. The mechanism behind this increase is due to favorable electrostatic interactions between the Asp27 residue and a proton at the N5 atom. The electrostatic interactions are enhanced by a hydrophobic active site, which to a large extent is made hydrophobic by the M20 loop in DHFR. Moreover, we find that the conformation imposed on H2F by DHFR to some extent also favors protonation of the N5 atom. Our results add support to previous findings and suggestions by Callender and co-workers [e.g., Deng, J.; Callender, R. J. Am. Chem. Soc. 1998, 120, 7730-7737] and explain why mutation of Asp27 may lead to severely reduced activity at neutral pH. Copyright © 2003 American Chemical Society.
引用
收藏
页码:8718 / 8719
页数:2
相关论文
共 18 条
[1]   pH-dependent conformational changes in Escherichia coli dihydrofolate reductase revealed by Raman difference spectroscopy [J].
Chen, YQ ;
Kraut, J ;
Callender, R .
BIOPHYSICAL JOURNAL, 1997, 72 (02) :936-941
[2]   DETERMINATION BY RAMAN-SPECTROSCOPY OF THE PK(A), OF N5 OF DIHYDROFOLATE BOUND TO DIHYDROFOLATE-REDUCTASE - MECHANISTIC IMPLICATIONS [J].
CHEN, YQ ;
KRAUT, J ;
BLAKLEY, RL ;
CALLENDER, R .
BIOCHEMISTRY, 1994, 33 (23) :7021-7026
[3]   Computational methods for the study of enzymic reaction mechanisms. 1. Application to the hydride transfer step in the catalysis of dihydrofolate reductase [J].
Cummins, PL ;
Greatbanks, SP ;
Rendell, AP ;
Gready, JE .
JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (38) :9934-9944
[4]   Energetically most likely substrate and active-site protonation sites and pathways in the catalytic mechanism of dihydrofolate reductase [J].
Cummins, PL ;
Gready, JE .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2001, 123 (15) :3418-3428
[5]   STRUCTURE AND FUNCTION OF ALTERNATIVE PROTON-RELAY MUTANTS OF DIHYDROFOLATE-REDUCTASE [J].
DAVID, CL ;
HOWELL, EE ;
FARNUM, MF ;
VILLAFRANCA, JE ;
OATLEY, SJ ;
KRAUT, J .
BIOCHEMISTRY, 1992, 31 (40) :9813-9822
[6]   Structure of dihydrofolate when bound to dihydrofolate reductase [J].
Deng, H ;
Callender, R .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1998, 120 (31) :7730-7737
[7]   CONSTRUCTION AND EVALUATION OF THE KINETIC SCHEME ASSOCIATED WITH DIHYDROFOLATE-REDUCTASE FROM ESCHERICHIA-COLI [J].
FIERKE, CA ;
JOHNSON, KA ;
BENKOVIC, SJ .
BIOCHEMISTRY, 1987, 26 (13) :4085-4092
[8]   Structural basis of perturbed pKa values of catalytic groups in enzyme active sites [J].
Harris, TK ;
Turner, GJ .
IUBMB LIFE, 2002, 53 (02) :85-98
[9]   FUNCTIONAL-ROLE OF ASPARTIC ACID-27 IN DIHYDROFOLATE-REDUCTASE REVEALED BY MUTAGENESIS [J].
HOWELL, EE ;
VILLAFRANCA, JE ;
WARREN, MS ;
OATLEY, SJ ;
KRAUT, J .
SCIENCE, 1986, 231 (4742) :1123-1128
[10]   MOLSCRIPT - A PROGRAM TO PRODUCE BOTH DETAILED AND SCHEMATIC PLOTS OF PROTEIN STRUCTURES [J].
KRAULIS, PJ .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1991, 24 :946-950