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Thermochemistry of protein-DNA interaction studied with temperature-controlled nonequilibrium capillary electrophoresis of equilibrium mixtures

机译:用温度控制的均衡混合物测定蛋白质-DNA相互作用的热化学均匀毛细管电泳

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We introduce temperature-controlled nonequilibrium capillary electrophoresis of equilibrium mixtures (NECEEM) and demonstrate its use to study thermochemistry of protein-DNA interactions. Being a homogeneous kinetic method, temperature-controlled NECEEM uniquely allows finding temperature dependencies of equilibrium and kinetic parameters of complex formation without the immobilization of the interacting molecules on the surface of a solid substrate. In this work, we applied temperature controlled NECEEM to study the thermochemistry of two protein-DNA pairs: (i) Taq DNA polymerase with its DNA aptamer and (ii) E. coli single-stranded DNA binding protein with a 20-base-long single-stranded DNA. We determined temperature dependencies of three parameters: the equilibrium binding constant (K-b), the rate constant of complex dissociation (k(off)), and the rate constant of complex formation (k(on)). The Kb(T) functions for both protein-DNA pairs bad phase-transition-like points suggesting temperature-dependent conformational changes in structures of the interacting macromolecules. Temperature dependencies of k(on) and koff provided insights into how the conformational changes affected two opposite processes: binding and dissociation. Finally, thermodynamic parameters, DeltaH and DeltaS, for complex formation were found for different conformations. With its unique features and potential applicability to other macromolecular interactions, temperature-controlled NECEEM establishes a valuable addition to the arsenal of analytical methods used to study dynamic molecular complexes.
机译:我们引入温度控制的均衡毛细管电泳的均衡混合物(NECEEM),并证明其用于研究蛋白质-DNA相互作用的热化学。作为一种均匀的动力学方法,温度控制的Neceem唯一允许发现复杂形成的均衡和动力学参数的温度依赖性,而不会固定在固体基质表面上的相互作用分子。在这项工作中,我们应用了温度控制的neceem,研究了两种蛋白质-DNA对的热化学:(i)Taq DNA聚合酶,其具有其DNA适体和(II)大肠杆菌单链DNA结合蛋白,具有20碱基单链DNA。我们确定了三个参数的温度依赖性:平衡结合常数(K-B),复合解离的速率常数(k(off)),以及复杂形成的速率常数(k(上))。 KB(T)用于蛋白质-DNA对的函数不良相变状点,其呈现相互作用的大分子结构的温度依赖性构象变化。 K(ON)和Koff的温度依赖性提供了对构象变化影响两个相反过程的洞察的见解:结合和解离。最后,找到了热力学参数,Deltah和Deltas,用于不同的构象。凭借其对其他大分子相互作用的独特特征和潜在适用性,温度控制的NEEEMEEEM为用于研究动态分子复合物的分析方法的阿森纳建立了有价值的补充。

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