Li Li, Lelyveld Victor S, Prywes Noam, Szostak Jack W
Howard Hughes Medical Institute, Department of Molecular Biology and Center for Computational and Integrative Biology, Massachusetts General Hospital , Boston, Massachusetts 02114, United States.
J Am Chem Soc. 2016 Mar 30;138(12):3986-9. doi: 10.1021/jacs.6b00784. Epub 2016 Mar 17.
Phosphoroimidazolides play a critical role in several enzymatic phosphoryl transfer reactions and have been studied extensively as activated monomers for nonenzymatic nucleic acid replication, but the detailed mechanisms of these phosphoryl transfer reactions remain elusive. Some aspects of the mechanism can be deduced by studying the hydrolysis reaction, a simpler system that is amenable to a thorough mechanistic treatment. Here we characterize the transition state of phosphoroimidazolide hydrolysis by kinetic isotope effect (KIE) and linear free energy relationship (LFER) measurements, and theoretical calculations. The KIE and LFER observations are best explained by calculated loose transition structures with extensive scissile bond cleavage. These three-dimensional models of the transition state provide the basis for future mechanistic investigations of phosphoroimidazolide reactions.
磷酰咪唑在多个酶促磷酸转移反应中起着关键作用,并且作为非酶促核酸复制的活化单体已被广泛研究,但这些磷酸转移反应的详细机制仍然难以捉摸。通过研究水解反应(一个更简单且适合进行全面机理研究的体系),可以推断出该机制的某些方面。在此,我们通过动力学同位素效应(KIE)、线性自由能关系(LFER)测量以及理论计算来表征磷酰咪唑水解的过渡态。KIE和LFER观测结果最能通过具有广泛可裂解键断裂的计算出的松散过渡结构来解释。这些过渡态的三维模型为未来磷酰咪唑反应的机理研究提供了基础。