蛋白质-核酸相互作用动力学:利用盐效应探测相互作用机制。

T M Lohman
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引用次数: 160

摘要

讨论了蛋白质-核酸相互作用的动力学,特别强调了盐浓度和价对观察到的速率常数的影响。综述了利用实验测定的动力学参数对盐的依赖性作为研究相互作用机理的工具。通过应用多电解质理论对这些盐依赖性进行定量分析,可用于区分在单一步骤中发生的反应与涉及不同中间体的反应。对于那些在缔合反应或解离反应中显示出很大的盐依赖性的速率常数,这是由于在反应的限速步骤之前的某个点,核酸附近的高浓度反离子(例如Na+)随后被释放(或在解离的情况下结合)。对影响蛋白质-核酸动力学的其他特征,如核酸长度和非特异性与特异性DNA结合位点的比率(在序列特异性结合蛋白的情况下),也给出了一般性讨论。讨论了小配体(离子、染料、寡肽)、非特异性结合蛋白(T4基因32蛋白、fd基因5蛋白和大肠杆菌SSB)和序列特异性结合蛋白(lac抑制蛋白、RNA聚合酶、Eco RI限制性内切酶)的核酸结合动力学的现有数据,重点讨论了实验确定的盐依赖性的解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kinetics of protein-nucleic acid interactions: use of salt effects to probe mechanisms of interaction.

The kinetics of protein-nucleic acid interactions are discussed with particular emphasis on the effects of salt concentration and valence on the observed rate constants. A general review is given of the use of experimentally determined salt dependences of observed kinetic parameters as a tool to probe the mechanism of interaction. Quantitative analysis of these salt dependences, through the application of polyelectrolyte theory, can be used to distinguish reactions which occur in a single step from those reactions which involve distinct intermediates. For those rate constants which display a large salt dependence, in either the association or dissociation reaction, this is due to the high concentration of counterions (e.g., Na+) in the vicinity of the nucleic acid which are subsequently released (or bound in the case of dissociation) at some point before the rate limiting step of the reaction. A general discussion of other features which affect protein-nucleic acid kinetics, such as nucleic acid length and the ratio of nonspecific to specific DNA binding sites (in the case of sequence specific binding proteins), is also given. The available data on the nucleic acid binding kinetics of small ligands (ions, dyes, oligopeptides), nonspecific binding proteins (T4 gene 32 protein, fd gene 5 and Escherichia coli SSB), and sequence specific binding proteins (lac repressor, RNA polymerase, Eco RI restriction endonuclease) are discussed with emphasis on the interpretation of the experimentally determined salt dependences.

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