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The Origins of Enzyme Catalysis: Experimental Findings for C-H Activation New Models and Their Relevance to Prevailing Theoretical Constructs

机译:酶催化的起源:C-H活化的实验发现新模型及其与普遍理论构建的相关性

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摘要

The physical basis for enzymatic rate accelerations is a subject of great fundamental interest and of direct relevance to areas that include the de novo design of green catalysts and the pursuit of new drug regimens. Extensive investigations of C-H activating systems have provided considerable insight into the relationship between an enzyme’s overall structure and the catalytic chemistry at its active site. This Perspective highlights recent experimental data for two members of distinct, yet iconic C-H activation enzyme classes, lipoxygenases and prokaryotic alcohol dehydrogenases. The data necessitate a reformulation of the dominant textbook definition of biological catalysis. A multidimensional model emerges that incorporates a range of protein motions that can be parsed into a combination of global stochastic conformational thermal fluctuations and local donor-acceptor distance sampling. These motions are needed to achieve a high degree of precision with regard to internuclear distances, geometries, and charges within the active site. The available model also suggests a physical framework for understanding the empirical enthalpic barrier in enzyme-catalyzed processes. We conclude by addressing the often conflicting interface between computational and experimental chemists, emphasizing the need for computation to predict experimental results in advance of their measurement.
机译:促进酶促速率的物理基础是一个非常重要的主题,并且与包括绿色催化剂的从头设计和追求新药物方案等领域直接相关。对C-H活化系统的广泛研究为酶的整体结构与其活性部位催化化学之间的关系提供了可观的见解。该观点重点介绍了两个不同但又具有标志性的C-H活化酶类别,脂氧合酶和原核醇脱氢酶的最新实验数据。数据需要重新定义生物催化的主要教科书定义。出现了一个多维模型,该模型合并了一系列蛋白质运动,可以将其解析为整体随机构象热波动和局部供体-受体距离采样的组合。这些运动是需要的,以便在活动位置内实现核间距,几何形状和电荷方面的高精度。现有的模型还提出了一个物理框架,用于理解酶催化过程中的经验焓屏障。我们通过解决计算化学家与实验化学家之间经常相互冲突的界面来结束结论,强调需要进行计算以预测其测量结果之前的实验结果。

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