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球蛋白的热稳定性:通过分子动力学模拟研究的柔韧性和血红素配位的影响。

Thermal Stability of Globins: Implications of Flexibility and Heme Coordination Studied by Molecular Dynamics Simulations.

机构信息

Departamento de Química Inorgánica, Analítica y Química Física, Facultad de Ciencias Exactas y Naturales , Universidad de Buenos Aires/Instituto de Química Física de los Materiales, Medio Ambiente y Energía (INQUIMAE-CONICET) , C1428EGA Buenos Aires , Argentina.

Departamento de Fisiología y Biología Molecular y Celular, Facultad de Ciencias Exactas y Naturales , Universidad de Buenos Aires , Departamento de Química Biológica, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires/IQUIBICEN-CONICET , C1428EGA Buenos Aires , Argentina.

出版信息

J Chem Inf Model. 2019 Jan 28;59(1):441-452. doi: 10.1021/acs.jcim.8b00840. Epub 2018 Dec 21.

Abstract

Proteins are sensitive to temperature, and abrupt changes in the normal temperature conditions can have a profound impact on both structure and function, leading to protein unfolding. However, the adaptation of certain organisms to extreme conditions raises questions about the structural features that permit the structure and function of proteins to be preserved under these adverse conditions. To gain insight into the molecular basis of protein thermostability in the globin family, we have examined three representative examples: human neuroglobin, horse heart myoglobin, and Drosophila hemoglobin, which differ in their melting temperatures and coordination states of the heme iron in the absence of external ligands. In order to elucidate the possible mechanisms that govern the thermostability of these proteins, microsecond-scale classical molecular dynamics simulations were performed at different temperatures. Structural fluctuations and essential dynamics were analyzed, indicating that the flexibility of the CD region, which includes the two short C and D helixes and the connecting CD loop, is directly related to the thermostability. We observed that a larger inherent flexibility of the protein produces higher thermostability, probably concentrating the thermal fluctuations observed at high temperature in flexible regions, preventing unfolding. Globally, the results of this work improve our understanding of thermostability in the globin family.

摘要

蛋白质对温度敏感,正常温度条件的突然变化会对结构和功能产生深远影响,导致蛋白质展开。然而,某些生物对极端条件的适应提出了这样的问题,即在这些不利条件下,蛋白质的结构和功能如何得以保持?为了深入了解球蛋白家族中蛋白质热稳定性的分子基础,我们研究了三个有代表性的例子:人神经球蛋白、马心脏肌红蛋白和果蝇血红蛋白,它们的熔点和在没有外部配体的情况下血红素铁的配位状态不同。为了阐明这些蛋白质热稳定性的可能机制,我们在不同温度下进行了微秒级别的经典分子动力学模拟。分析了结构波动和基本动力学,表明包含两个短 C 和 D 螺旋以及连接的 CD 环的 CD 区的灵活性与热稳定性直接相关。我们观察到,蛋白质更大的固有灵活性产生更高的热稳定性,可能将在高温下观察到的热波动集中在灵活的区域,从而防止展开。总的来说,这项工作的结果提高了我们对球蛋白家族热稳定性的理解。

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