Molecular basis for enantioselectivity of lipase from Pseudomonas cepacia toward primary alcohols.: Modeling, kinetics, and chemical modification of Tyr29 to increase or decrease enantioselectivity

被引:94
作者
Tuomi, WV [1 ]
Kazlauskas, RJ [1 ]
机构
[1] McGill Univ, Dept Chem, Montreal, PQ H3A 2K6, Canada
关键词
D O I
10.1021/jo981783y
中图分类号
O62 [有机化学];
学科分类号
070303 ; 081704 ;
摘要
Lipase from Pseudomonas cepacia (PCL) shows good enantioselectivity toward primary alcohols, An empirical rule can predict which enantiomer of a primary alcohol reacts faster, but there is no reliable strategy to increase the enantioselectivity. We used a combination of molecular modeling of lipase-transition state analogue complexes and kinetic measurements to identify the molecular basis of the enantioselectivity toward two primary alcohols: 2-methyl-3-phenyl-1-propanol, 1, and 2-phenoxy-1-propanol, 2. In hydrolysis of the acetate esters, PCL favors the (S)-enantiomer of both substrates (E = 16 and 17, respectively), but, due to changes in priorities of the substituents, the (S)-enantiomers of 1 and 2 have opposite shapes. Computer modeling of transition state analogues bound to PCL show that primary alcohols bind to PCL differently than secondary alcohols. Modeling and kinetics suggest that the enantioselectivity of PCL toward 1 comes from the binding of the methyl group at the stereocenter within a hydrophobic pocket for the fast-reacting enantiomer, but not for the slow-reacting enantiomer. On the other hand, the enantioselectivity toward 2 comes from an extra hydrogen bond between the phenoxy oxygen of the substrate to the phenolic OH of Tyr29. This hydrogen bond may slow release of the (R)-alcohol and thus account for the reversal of enantioselectvity. To decrease the enantioselectivity of PCL toward 2-acetate by a factor of 2 to E = 8, we eliminated the hydrogen bond by acetylation of the tyrosyl residues with N-acetylimidazole. To increase the enantioselectivity of PCL toward 2-acetate by a factor of 2 to E = 36, we increased the strength of the hydrogen bond by nitration of the tyrosyl residues with tetranitromethane. This is one of the first examples of a rationally designed modification of a lipase to increase enantioselectivity.
引用
收藏
页码:2638 / 2647
页数:10
相关论文
共 59 条
[41]   COMPUTER MODELING OF SUBSTRATE-BINDING TO LIPASES FROM RHIZOMUCOR-MIEHEI, HUMICOLA-LANUGINOSA, AND CANDIDA-RUGOSA [J].
NORIN, M ;
HAEFFNER, F ;
ACHOUR, A ;
NORIN, T ;
HULT, K .
PROTEIN SCIENCE, 1994, 3 (09) :1493-1503
[42]   THE ALPHA/BETA-HYDROLASE FOLD [J].
OLLIS, DL ;
CHEAH, E ;
CYGLER, M ;
DIJKSTRA, B ;
FROLOW, F ;
FRANKEN, SM ;
HAREL, M ;
REMINGTON, SJ ;
SILMAN, I ;
SCHRAG, J ;
SUSSMAN, JL ;
VERSCHUEREN, KHG ;
GOLDMAN, A .
PROTEIN ENGINEERING, 1992, 5 (03) :197-211
[43]   Lipase-catalysed enantioselective hydrolysis: Interpretation of the kinetic results in terms of frontier orbital localisation [J].
Parve, O ;
Vallikivi, I ;
Metsala, A ;
Lille, U ;
Tougu, V ;
Sikk, P ;
Kaambre, T ;
Vija, H ;
Pehk, T .
TETRAHEDRON, 1997, 53 (13) :4889-4900
[44]  
RANGHINO G, 1992, TRENDS QSAR MOL MODE, P373
[45]  
RIORDAN JF, 1967, METHOD ENZYMOL, V11, P570
[46]  
ROBERTS SM, 1992, PREPARATIVE BIOTRANS
[47]   Enantiomerically enriched bifunctional sec-alcohols prepared by Candida antarctica lipase B catalysis. Evidence of non-steric interactions [J].
Rotticci, D ;
Orrenius, C ;
Hult, K ;
Norin, T .
TETRAHEDRON-ASYMMETRY, 1997, 8 (03) :359-362
[48]  
SAINZDIAZ CI, 1997, J MOL STRUC-THEOCHEM, V390, P225
[49]   The open conformation of a Pseudomonas lipase [J].
Schrag, JD ;
Li, YG ;
Cygler, M ;
Lang, DM ;
Burgdorf, T ;
Hecht, HJ ;
Schmid, R ;
Schomburg, D ;
Rydel, TJ ;
Oliver, JD ;
Strickland, LC ;
Dunaway, CM ;
Larson, SB ;
Day, J ;
McPherson, A .
STRUCTURE, 1997, 5 (02) :187-202
[50]   BIOCATALYTIC RESOLUTION OF (+/-)-HYDROXYALKANOIC ESTERS - A STRATEGY FOR ENHANCING THE ENANTIOMERIC SPECIFICITY OF LIPASE-CATALYZED ESTER HYDROLYSIS [J].
SCILIMATI, A ;
NGOOI, TK ;
SIH, CJ .
TETRAHEDRON LETTERS, 1988, 29 (39) :4927-4930