Retinoic acid biosynthesis catalyzed by retinal dehydrogenases relies on a rate-limiting conformational transition associated with substrate recognition

被引:28
作者
Bchini, Raphael [1 ]
Vasiliou, Vasilis [2 ]
Branlant, Guy [1 ]
Talfournier, Francois [1 ]
Rahuel-Clermont, Sophie [1 ]
机构
[1] Univ Lorraine, Fac Med, CNRS,UMR AREMS 7214, ARN RNP Struct Fonct Maturat Enzymol Mol & Struct, F-54505 Vandoeuvre Les Nancy, France
[2] Univ Colorado Denver, Skaggs Sch Pharm & Pharmaceut Sci, Dept Pharmaceut Sci, Aurora, CO 80045 USA
基金
美国国家卫生研究院;
关键词
Aldehyde dehydrogenase; Retinal; Molecular recognition; Conformational flexibility; NONPHOSPHORYLATING GLYCERALDEHYDE-3-PHOSPHATE DEHYDROGENASE; ALDEHYDE DEHYDROGENASE; STREPTOCOCCUS-MUTANS; BINDING; METABOLISM; CANCER; ISOMERIZATION; SPECIFICITY; MECHANISM; COFACTOR;
D O I
10.1016/j.cbi.2012.11.019
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Retinoic acid (RA), a metabolite of vitamin A, exerts pleiotropic effects throughout life in vertebrate organisms. Thus, RA action must be tightly regulated through the coordinated action of biosynthetic and degrading enzymes. The last step of retinoic acid biosynthesis is irreversibly catalyzed by the NAD-dependent retinal dehydrogenases (RALDH), which are members of the aldehyde dehydrogenase (ALDH) superfamily. Low intracellular retinal concentrations imply efficient substrate molecular recognition to ensure high affinity and specificity of RALDHs for retinal. This study addresses the molecular basis of retinal recognition in human ALDH1A1 (or RALDH1) and rat ALDH1A2 (or RALDH2), through the comparison of the catalytic behavior of retinal analogs and use of the fluorescence properties of retinol. We show that, in contrast to long chain unsaturated substrates, the rate-limiting step of retinal oxidation by RALDHs is associated with acylation. Use of the fluorescence resonance energy transfer upon retinol interaction with RALDHs provides evidence that retinal recognition occurs in two steps: binding into the substrate access channel, and a slower structural reorganization with a rate constant of the same magnitude as the k(cat) for retinal oxidation: 0.18 vs. 0.07 and 0.25 vs. 0.1 s(-1) for ALDH1A1 and ALDH1A2, respectively. This suggests that the conformational transition of the RALDH-retinal complex significantly contributes to the rate-limiting step that controls the kinetics of retinal oxidation, as a prerequisite for the formation of a catalytically competent Michaelis complex. This conclusion is consistent with the general notion that structural flexibility within the active site of ALDH enzymes has been shown to be an integral component of catalysis. (C) 2012 Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:78 / 84
页数:7
相关论文
共 38 条
[1]
The promise of retinoids to fight against cancer [J].
Altucci, L ;
Gronemeyer, H .
NATURE REVIEWS CANCER, 2001, 1 (03) :181-193
[2]
Adenine Binding Mode Is a Key Factor in Triggering the Early Release of NADH in Coenzyme A-dependent Methylmalonate Semialdehyde Dehydrogenase [J].
Bchini, Raphael ;
Dubourg-Gerecke, Helene ;
Rahuel-Clermont, Sophie ;
Aubry, Andre ;
Branlant, Guy ;
Didierjean, Claude ;
Talfournier, Francois .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (37) :31095-31103
[3]
A disorder to order transition accompanies catalysis in retinaldehyde dehydrogenase type II [J].
Bordelon, T ;
Montegudo, SK ;
Pakhomova, S ;
Oldham, ML ;
Newcomer, ME .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (41) :43085-43091
[4]
The first crystal structure of a thioacylenzyme intermediate in the ALDH family: New coenzyme conformation and relevance to catalysis [J].
D'Ambrosio, K ;
Pailot, A ;
Talfournier, F ;
Didierjeau, C ;
Benedetti, E ;
Aubry, A ;
Branlant, G ;
Corbier, C .
BIOCHEMISTRY, 2006, 45 (09) :2978-2986
[5]
Cytosolic retinoid dehydrogenases govern ubiquitous metabolism of retinol to retinaldehyde followed by tissue-specific metabolism to retinoic acid [J].
Duester, G ;
Mic, FA ;
Molotkov, A .
CHEMICO-BIOLOGICAL INTERACTIONS, 2003, 143 :201-210
[6]
Retinoic acid synthesis and signaling during early organogenesis [J].
Duester, Gregg .
CELL, 2008, 134 (06) :921-931
[7]
Kinetic analysis of mouse retinal dehydrogenase type-2 (RALDH2) for retinal substrates [J].
Gagnon, I ;
Duester, G ;
Bhat, PV .
BIOCHIMICA ET BIOPHYSICA ACTA-PROTEIN STRUCTURE AND MOLECULAR ENZYMOLOGY, 2002, 1596 (01) :156-162
[8]
Gudas L.J., 1821, BIOCHIM BIOPHYS ACTA, V2012, P213
[9]
Multiple conformations of NAD and NADH when bound to human cytosolic and mitochondrial aldehyde dehydrogenase [J].
Hammen, PK ;
Allali-Hassani, A ;
Hallenga, K ;
Hurley, TD ;
Weiner, H .
BIOCHEMISTRY, 2002, 41 (22) :7156-7168
[10]
Mechanism of inhibition of aldehyde dehydrogenase by citral, a retinoid antagonist [J].
Kikonyogo, A ;
Abriola, DP ;
Dryjanski, M ;
Pietruszko, R .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1999, 262 (03) :704-712