ELECTRONIC ASPECTS OF LADH CATALYTIC MECHANISM

被引:45
作者
TAPIA, O
CARDENAS, R
ANDRES, J
KRECHL, J
CAMPILLO, M
COLONNACESARI, F
机构
[1] SVERIGES LANTBRUKSUNIV, BMC, DEPT MOLEC BIOL, S-75124 UPPSALA, SWEDEN
[2] UNIV CASTELLO COLEGI, DEPT PHYS CHEM, Castellon de La Plana, SPAIN
[3] INST CHEM TECHNOL, DEPT ORGAN CHEM, CS-16628 PRAGUE, CZECHOSLOVAKIA
[4] UNIV AUTONOMA BARCELONA, FAC MED, DEPT BIOESTAT, BARCELONA, SPAIN
[5] UNIV PARIS 11, ENZYMOL PHYSICOCHIM & MOLEC LAB, F-91405 ORSAY, FRANCE
关键词
D O I
10.1002/qua.560390603
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
Electronic aspects of the catalytic mechanism of liver alcohol dehydrogenase (LADH) are studied with the help of ab initio analytical gradient SCF MO methods. Three points are considered: (i) role of the catalytic zinc; (ii) geometry and electronic structure of the transition state for the hydride transfer reaction; and (iii) factors affecting the energy gap for the hydride transfer step, namely, substrate binding to zinc, reaction field, and serine 48 effects on the potential energy profile. The coordination sphere of the catalytic zinc has been modeled with an ammonia molecule and two SH- groups; complex with CH3O-, CH3OH, and CH2O have been studied; a (6, 2, 2, 2, 1/6, 2, 1/3, 2) basis set has been used for Zn++; a (5, 2, 1, 1/3, 2) was used for oxygen, carbon, and sulfur; and a (3, 1) was used for hydrogen atoms. The hydride step was studied with two model systems: pyridinium cation/1,4-dihydropyridine coupled to the CH3O-/CH2O reaction, and cyclopropenyl cation/cyclopropene coupled to the CH3O-/CH2O system. For the latter, the role of Ser48 has been studied at the supermolecule level. The calculation on the hydride transfer step has been done at a 4-31G basis set level. The results obtained shed new light on the sources of catalytic activity of liver alcohol dehydrogenases.
引用
收藏
页码:767 / 786
页数:20
相关论文
共 37 条
[1]   EVOLUTION OF ENZYME FUNCTION AND DEVELOPMENT OF CATALYTIC EFFICIENCY [J].
ALBERY, WJ ;
KNOWLES, JR .
BIOCHEMISTRY, 1976, 15 (25) :5631-5640
[2]   A THEORETICAL-STUDY OF THE MEYER-SCHUSTER REACTION-MECHANISM - MINIMUM-ENERGY PROFILE AND PROPERTIES OF TRANSITION-STATE STRUCTURE [J].
ANDRES, J ;
CARDENAS, R ;
SILLA, E ;
TAPIA, O .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1988, 110 (03) :666-674
[3]  
[Anonymous], 1985, ENZYME STRUCTURE MEC
[4]  
Branden C, 1980, DEHYDROGENASES REQUI, P40
[5]   MOLECULAR-PROPERTIES OF PARA-(DIMETHYLAMINO)BENZALDEHYDE BOUND TO LIVER ALCOHOL-DEHYDROGENASE - A RAMAN-SPECTROSCOPIC STUDY [J].
CALLENDER, R ;
CHEN, DH ;
LUGTENBURG, J ;
MARTIN, C ;
RHEE, KW ;
SLOAN, D ;
VANDERSTEEN, R ;
YUE, KT .
BIOCHEMISTRY, 1988, 27 (10) :3672-3681
[6]  
COLONNACESARI F, 1986, J BIOL CHEM, V261, P5273
[7]  
COLTHUP NB, 1975, INTRO INFRARED RAMAN, P22
[8]   PH VARIATION OF ISOTOPE EFFECTS IN ENZYME-CATALYZED REACTIONS .1. ISOTOPE-DEPENDENT AND PH-DEPENDENT STEPS THE SAME [J].
COOK, PF ;
CLELAND, WW .
BIOCHEMISTRY, 1981, 20 (07) :1797-1805
[9]   PRIMARY AND SECONDARY DEUTERIUM-ISOTOPE EFFECTS ON EQUILIBRIUM-CONSTANTS FOR ENZYME-CATALYZED REACTIONS [J].
COOK, PF ;
BLANCHARD, JS ;
CLELAND, WW .
BIOCHEMISTRY, 1980, 19 (21) :4853-4858
[10]   SECONDARY DEUTERIUM AND N-15 ISOTOPE EFFECTS IN ENZYME-CATALYZED REACTIONS - CHEMICAL MECHANISM OF LIVER ALCOHOL-DEHYDROGENASE [J].
COOK, PF ;
OPPENHEIMER, NJ ;
CLELAND, WW .
BIOCHEMISTRY, 1981, 20 (07) :1817-1825