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Exploring Coupled Redox and pH Processes with a Force-Field-Based Approach: Applications to Five Different Systems

机译:基于力场的方法探索氧化还原和pH耦合过程:在五个不同系统中的应用

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摘要

Coupled redox and pH-driven processes are at the core of many important biological mechanisms. As the distribution of protonation and redox states in a system is associated with the pH and redox potential of the solution, having efficient computational tools that can simulate under these conditions becomes very important. Such tools have the potential to provide information that complement and drive experiments. In previous publications we have presented the implementation of the constant pH and redox potential molecular dynamics (C(pH,E)MD) method in AMBER and we have shown how multidimensional replica exchange can be used to significantly enhance the convergence efficiency of our simulations. In the current work, after an improvement in our C(pH,E)MD approach that allows a given residue to be simultaneously pH- and redox-active, we have employed our methodologies to study five different systems of interest in the literature. We present results for capped tyrosine dipeptide, two maquette systems containing one pH- and redox-active tyrosine (α_3Y and peptide A), and two proteins that contain multiple heme groups (diheme cytochrome c from Rhodobacter sphaeroides and Desulfovibrio vulgaris Hildenborough cytochrome c_3). We show that our results can provide new insights into previous theoretical and experimental findings by using a fully force-field-based and GPU-accelerated approach, which allows the simulations to be executed with high computational performance.
机译:氧化还原和pH驱动过程耦合是许多重要生物学机制的核心。由于系统中质子化和氧化还原状态的分布与溶液的pH和氧化还原电位相关,因此拥有可以在这些条件下进行仿真的高效计算工具变得非常重要。这样的工具有可能提供补充和推动实验的信息。在以前的出版物中,我们介绍了在AMBER中实施恒定pH和氧化还原电位分子动力学(C(pH,E)MD)方法的过程,并展示了如何使用多维副本交换显着提高模拟的收敛效率。在当前的工作中,对我们的C(pH,E)MD方法进行了改进,使给定的残留物同时具有pH和氧化还原活性,我们采用了我们的方法来研究文献中涉及的五个不同的系统。我们介绍了加盖的酪氨酸二肽,两个包含一个pH值和氧化还原活性酪氨酸的模型系统(α_3Y和肽A)以及两个包含多个血红素基团的蛋白质(来自球形红球菌和寻常脱硫弧菌Hildenborough希尔德伯勒细胞色素c_3的二血红素细胞色素c)的结果。我们表明,通过使用完全基于力场和GPU加速的方法,我们的结果可以为以前的理论和实验发现提供新的见解,从而可以以较高的计算性能执行模拟。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第8期|3823-3835|共13页
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  • 作者单位

    Department of Chemistry University of Florida Gainesville Florida 32611 United States;

    Departamento de Fisico-Quimica Instituto de Quimica Universidade Estadual Paulista (Unesp) Araraquara Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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