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Calculating pH-dependent free energy of proteins by using Monte Carlo protonation probabilities of ionizable residues

机译:利用可电离残基的蒙特卡洛质子化概率计算蛋白质的pH依赖性自由能

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摘要

Protein folding, stability, and function are usually influenced by pH. And free energy plays a fundamental role in analysis of such pH-dependent properties. Electrostatics-based theoretical framework using dielectric solvent continuum model and solving Poisson-Boltzmann equation numerically has been shown to be very successful in understanding the pH-dependent properties. However, in this approach the exact computation of pH-dependent free energy becomes impractical for proteins possessing more than several tens of ionizable sites (e.g. > 30), because exact evaluation of the partition function requires a summation over a vast number of possible protonation microstates. Here we present a method which computes the free energy using the average energy and the protonation probabilities of ionizable sites obtained by the well-established Monte Carlo sampling procedure. The key feature is to calculate the entropy by using the protonation probabilities. We used this method to examine a well-studied protein (lysozyme) and produced results which agree very well with the exact calculations. Applications to the optimum pH of maximal stability of proteins and protein-DNA interactions have also resulted in good agreement with experimental data. These examples recommend our method for application to the elucidation of the pH-dependent properties of proteins.
机译:蛋白质折叠,稳定性和功能通常受pH值的影响。自由能在这种pH依赖特性的分析中起着基本作用。基于静电学的理论框架,使用介电溶剂连续体模型并通过数值求解泊松-玻尔兹曼方程,已被证明在理解pH依赖特性方面非常成功。但是,在这种方法中,精确计算pH依赖的自由能对于拥有超过几十个可电离位点(例如> 30)的蛋白质不切实际,因为对分配函数的精确评估需要对大量可能的质子化微态求和。在这里,我们提出了一种方法,该方法使用平均能量和通过完善的蒙特卡洛采样程序获得的可电离位的质子化概率来计算自由能。关键特征是通过使用质子化概率来计算熵。我们使用这种方法检查了经过充分研究的蛋白质(溶菌酶),并产生了与精确计算非常吻合的结果。蛋白质最大稳定性和蛋白质-DNA相互作用的最佳pH的最佳应用也与实验数据吻合良好。这些实例推荐了我们的方法,可用于阐明蛋白质的pH依赖性特性。

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