活动站点
异构化
背景(考古学)
催化作用
羟醛反应
化学
过渡状态
量子
水解
过渡态理论
计算化学
生化工程
组合化学
计算机科学
生物系统
有机化学
反应速率常数
物理
工程类
量子力学
动力学
古生物学
生物
作者
Xiyun Zhang,Jason DeChancie,Hakan Günaydin,Arnab B. Chowdry,Fernando R. Clemente,Smith,Tracy M. Handel,K. N. Houk
摘要
The design of active sites has been carried out using quantum mechanical calculations to predict the rate-determining transition state of a desired reaction in presence of the optimal arrangement of catalytic functional groups (theozyme). Eleven versatile reaction targets were chosen, including hydrolysis, dehydration, isomerization, aldol, and Diels-Alder reactions. For each of the targets, the predicted mechanism and the rate-determining transition state (TS) of the uncatalyzed reaction in water is presented. For the rate-determining TS, a catalytic site was designed using naturalistic catalytic units followed by an estimation of the rate acceleration provided by a reoptimization of the catalytic site. Finally, the geometries of the sites were compared to the X-ray structures of related natural enzymes. Recent advances in computational algorithms and power, coupled with successes in computational protein design, have provided a powerful context for undertaking such an endeavor. We propose that theozymes are excellent candidates to serve as the active site models for design processes.
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