Bocola Marco, Otte Nikolaj, Jaeger Karl-Erich, Reetz Manfred T, Thiel Walter
Max-Planck-Institut für Kohlenforschung, Kaiser-Wilhelm-Platz 1, 45470 Mülheim an der Ruhr, Germany.
Chembiochem. 2004 Feb 6;5(2):214-23. doi: 10.1002/cbic.200300731.
Molecular modeling with classical force-fields has been used to study the reactant complex and the tetrahedral intermediate in lipase-catalyzed ester hydrolysis in 20 enzyme/substrate combinations. The R and S enantiomers of alpha-methyldecanoic acid ester served as substrates for the wild-type lipase from Pseudomonas aeruginosa and nine selected mutants. After suitable preparation of initial structures from an available wild-type crystal structure, each system was subjected to 1 ns CHARMM force-field molecular dynamics simulations. The resulting geometric and energetic changes allow interpretation of some experimentally observed effects of mutations, particularly with regard to the "hot spots" at residues 155 and 162. The replacement S155F enhances S enantiopreference through a steric relay involving Leu162. The double mutation S53P + L162G improves S enantioselectivity by creating a new binding pocket for the S enantiomer with an additional stabilizing hydrogen bond to His83. The simulations provide insight into remote and cooperative effects of mutations.
利用经典力场进行分子建模,研究了20种酶/底物组合中脂肪酶催化酯水解的反应物复合物和四面体中间体。α-甲基癸酸酯的R和S对映体作为铜绿假单胞菌野生型脂肪酶和9个选定突变体的底物。从可用的野生型晶体结构适当制备初始结构后,对每个系统进行1纳秒的CHARMM力场分子动力学模拟。由此产生的几何和能量变化有助于解释一些实验观察到的突变效应,特别是关于155和162位残基的“热点”。取代突变S155F通过涉及Leu162的空间中继增强了对S对映体的偏好。双突变S53P + L162G通过为S对映体创建一个新的结合口袋并与His83形成额外的稳定氢键来提高S对映选择性。这些模拟为突变的远程和协同效应提供了深入了解。