MECHANISTIC INVESTIGATION OF MEDIUM-CHAIN FATTY ACYL-COA DEHYDROGENASE UTILIZING 3-INDOLEPROPIONYL ACRYLOYL-COA AS CHROMOPHORIC SUBSTRATE-ANALOGS

被引:41
作者
JOHNSON, JK [1 ]
WANG, ZX [1 ]
SRIVASTAVA, DK [1 ]
机构
[1] N DAKOTA STATE UNIV,DEPT BIOCHEM,FARGO,ND 58105
关键词
D O I
10.1021/bi00158a020
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
The CoA derivative 3-indolepropionyl-CoA (IPCoA) serves as a competent pseudosubstrate for the medium-chain fatty acyl-CoA dehydrogenase (MCAD)-catalyzed reaction. The reaction product trans-3-indoleacryloyl-CoA (IACoA) exhibits a characteristic UV-vis absorption spectrum with lambda(max) = 367 nm and epsilon367 = 26 500 M-1 cm-1. The chromophoric nature of IACoA allows us to measure the direct conversion of substrate to product (at 367 nm) without recourse to absorption signals for either the enzyme-bound flavin or the coupling electron acceptors, as well as probe the enzyme site environment. The interaction of IACoA with medium chain fatty acyl-CoA dehydrogenase (MCAD)-FAD is characterized by resultant (spectra of the mixture minus the individual components) absorption peaks at 490, 417, and 355 nm. These absorption peaks increase in magnitude as the pH of the buffer media decreases. Transient kinetic analysis for the interaction of MCAD-FAD with IACoA suggests that the formation of the enzyme-IACoA complex proceeds in two steps. The first (fast) step involves the formation of an E-IACoA collision complex, which [GRAPHICS] is isomerized (concomitant with changes in the protein structure) to an E*-IACoA complex in the second (slow) step. We have studied the effect of pH on K(c), k2, and k-2. While K(c) shows practically no dependence on pH (within a 2-fold variation between pH 6.0 and 9.5), k2 and k-2 show a strong dependence on pH. Both k2 and k-2 exhibit a sigmoidal dependence on the pH of the buffer media, with pK(a)'s of 7.53 and 8.30, respectively. In accordance with the model presented herein, the pK(a) of 7.53 represents an enzyme site group which is involved in the interaction with IACoA within the E-IACoA collision complex. This pK(a) is perturbed to 8.30 upon isomerization of the collision complex. The pH-dependent changes in k2 and k-2 are such that the equilibrium distribution between E-IACoA and E*-IACoA is favored to the latter complex (by about 20-fold) at lower pH than at higher pH. A cumulative account of the spectral, kinetic, and thermodynamic properties of the enzyme-IACoA complexes has allowed us delineate the microscopic pathway by which the E-IACoA isomerization (presumably via protein conformational changes) is coupled to the proton equilibration steps.
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页码:10564 / 10575
页数:12
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