Wu N, Mo Y, Gao J, Pai E F
Department of Biochemistry, Centres of Excellence, University of Toronto, 1 King's College Circle, Toronto, ON Canada M5S 1A8.
Proc Natl Acad Sci U S A. 2000 Feb 29;97(5):2017-22. doi: 10.1073/pnas.050417797.
Orotidine 5'-monophosphate decarboxylase catalyzes the conversion of orotidine 5'-monophosphate to uridine 5'-monophosphate, the last step in biosynthesis of pyrimidine nucleotides. As part of a Structural Genomics Initiative, the crystal structures of the ligand-free and the6-azauridine 5'-monophosphate-complexed forms have been determined at 1.8 and 1.5 A, respectively. The protein assumes a TIM-barrel fold with one side of the barrel closed off and the other side binding the inhibitor. A unique array of alternating charges (Lys-Asp-Lys-Asp) in the active site prompted us to apply quantum mechanical and molecular dynamics calculations to analyze the relative contributions of ground state destabilization and transition state stabilization to catalysis. The remarkable catalytic power of orotidine 5'-monophosphate decarboxylase is almost exclusively achieved via destabilization of the reactive part of the substrate, which is compensated for by strong binding of the phosphate and ribose groups. The computational results are consistent with a catalytic mechanism that is characterized by Jencks's Circe effect.
乳清苷5'-单磷酸脱羧酶催化乳清苷5'-单磷酸转化为尿苷5'-单磷酸,这是嘧啶核苷酸生物合成的最后一步。作为结构基因组学计划的一部分,分别在1.8 Å和1.5 Å分辨率下测定了无配体形式和与6-氮杂尿苷5'-单磷酸复合形式的晶体结构。该蛋白质呈现TIM桶状折叠,桶的一侧封闭,另一侧结合抑制剂。活性位点中独特的交替电荷阵列(赖氨酸-天冬氨酸-赖氨酸-天冬氨酸)促使我们应用量子力学和分子动力学计算来分析基态去稳定化和过渡态稳定化对催化作用的相对贡献。乳清苷5'-单磷酸脱羧酶卓越的催化能力几乎完全是通过底物反应部分的去稳定化实现的,这由磷酸基团和核糖基团的强结合来补偿。计算结果与以詹克斯的喀耳刻效应为特征的催化机制一致。