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Effect of Zn2+ binding and enzyme active site on the transition state for RNA 2′-O-transphosphorylation interpreted through kinetic isotope effects

机译:Zn 2+结合和酶活性位点对通过动态同位素效应解释的RNA 2-O-转磷酸化过渡态的影响

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摘要

Divalent metal ions, due to their ability to stabilize high concentrations of negative charge, are important for RNA folding and catalysis. Detailed models derived from the structures and kinetics of enzymes and from computational simulations have been developed. However, in most cases the specific catalytic modes involving metal ions and their mechanistic roles and effects on transition state structures remains controversial. Valuable information about the nature of the transition state is provided by measurement of kinetic isotope effects (KIEs). However, KIEs reflect changes in all bond vibrational modes that differ between the ground state and transition state. QM calculations are therefore essential for developing structural models of the transition state and evaluating mechanistic alternatives. Herein, we present computational models for Zn2+ binding to RNA 2′O-transphosphorylation reaction models that aid in the interpretation of KIE experiments. Different Zn2+ binding modes produce distinct KIE signatures, and one binding mode involving two zinc ions is in close agreement with KIEs measured for non-enzymatic catalysis by Zn2+ aquo ions alone. Interestingly, the KIE signatures in this specific model are also very close to those in RNase A catalysis. These results allow a quantitative connection to be made between experimental KIE measurements and transition state structure and bonding, and provide insight into RNA 2′O-transphosphorylation reactions catalyzed by metal ions and enzymes.
机译:由于二价金属离子具有稳定高浓度负电荷的能力,因此对于RNA折叠和催化非常重要。已经开发了从酶的结构和动力学以及计算模拟中得出的详细模型。然而,在大多数情况下,涉及金属离子的特定催化方式及其机理作用和对过渡态结构的影响仍存在争议。通过测量动力学同位素效应(KIE),可以提供有关过渡态性质的重要信息。但是,KIE反映了基态和过渡态之间所有键振动模式的变化。因此,QM计算对于开发过渡状态的结构模型和评估机械选择至关重要。在这里,我们提出了Zn 2 + 与RNA 2'O-转磷酸化反应模型结合的计算模型,该模型有助于解释KIE实验。不同的Zn 2 + 结合方式产生不同的KIE签名,一种涉及两个锌离子的结合方式与通过Zn 2 + aquo进行非酶催化测量的KIE高度一致。离子。有趣的是,该特定模型中的KIE签名也与RNase A催化中的KIE签名非常接近。这些结果允许在实验KIE测量与过渡态结构和键之间建立定量连接,并提供对金属离子和酶催化的RNA 2'O-磷酸化反应的深入了解。

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