Engineered glycolytic glyceraldehyde-3-phosphate dehydrogenase binds the anti conformation of NAD+ nicotinamide but does not experience A-specific hydride transfer

被引:18
作者
Eyschen, J
Vitoux, B
Marraud, M
Cung, MT
Branlant, G
机构
[1] UMR 7567 CNRS UHP, Maturat ARN & Enzymol Mol, F-54506 Vandoeuvre Les Nancy, France
[2] Ecole Natl Super Ind Chim, Inst Natl Polytech Lorraine, Lab Chim Phys Macromol, UMR 7568 CNRS, F-54001 Nancy, France
关键词
glyceraldehyde-3-phosphate dehydrogenase; hydride transfer; site-directed mutagenesis; stereospecificity; transferred nuclear Overhauser effect spectroscopy;
D O I
10.1006/abbi.1999.1116
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
Glycolytic glyceraldehyde-3-phosphate dehydrogenase (GAPDH) is a NAD-dependent oxidoreductase which catalyzes the oxidative phosphorylation of D-glyceraldehyde-3-phosphate (G3P) to form 1,3-diphosphoglycerate. The currently accepted mechanism involves an oxidoreduction step followed by a phosphorylation. GAPDH is classified as a B-specific oxidoreductase. The inspection of several crystal structures of GAPDHs indicates that the efficient hydride transfer from the hemithioacetal intermediate to the C4 position of the pyri dinium si face requires optimal nicotinamidium-protein contacts for a suitable pyridinium-ring orientation. In previous studies carried out on Escherichia coli GAPDH (C. Corbier, A Mougin, Y. Mely, H. W. Adolph, M. Zeppezauer, D. Gerard, k Wonacott, and G. Branlant, Biochimie 72, 545-554, 1990; J. Eyschen, C. Corbier, B. Vitoux, G. Branlant, and M. T. Cung, Protein Pept Lett. 1, 19-24, 1994), the role of the invariant Asn 313 residue, as an anchor which favors the syn orientation of the nicotinamide ring, was examined. Here, we report further investigations on the molecular factors responsible for the cofactor stereospecificity. Two single [Gly317] and [Ala317] GAPDH mutants and one double [Thr313- Gly317] GAPDH mutant were constructed on the basis of a molecular modelling study from the crystal structure of hole GAPDW from E. coli (E. Duee, L. Olivier-Deyris, E. Fanchon, C. Corbier, G;. Branlant, and O. Dideberg, J. Mel. Biol. 257, 814-838, 1996). The Kd constants of [Ala317], [Gly317], and [Thr313-Gly317] GAPDH mutants for NAH are 5, 13, and 300 times higher than that of wild-type GAPDH. Transferred nuclear Overhauser effect spectroscopy demonstrates that the wild-type syn orientation of bound nicotinamide remains unchanged in the [Gly317] and [Ala317] mutants, whereas a conformational equilibrium between the syn and anti forms occurs in the [Thr313-Gly317] double mutant with a preference for the anti conformer. Although the double mutant preferably binds the nicotinamide ring in an anti conformation, it still exhibits B hydride transfer stereospecificity. Yet, the catalytic efficiency is much less than that of the wild type. This indicates that the hole GAPDH mutant fraction with an anti orientation of bound NAD is not capable of forming the ternary complex with G3P which would be required for an efficient A-specific catalytic process. The reasons of this catalytic inefficiency are discussed in relation with the historical and functional models which were advanced to explain the stereospecificity of NAD(P)-dependent dehydrogenases, (C) 1999 Academic Press.
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收藏
页码:219 / 227
页数:9
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