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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Allosteric Communication Pathways and Thermal Rectification in PDZ-2 Protein: A Computational Study
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Allosteric Communication Pathways and Thermal Rectification in PDZ-2 Protein: A Computational Study

机译:PDZ-2蛋白的变构通讯途径和热整流:计算研究。

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Allosteric communication in proteins is a fundamental and yet unresolved problem of structural biochemistry. Previous findings, from computational biology (Ota, N.; Agard, D. A. J. Mol. Biol. 2005, 351, 345-354), have proposed that heat diffuses in a protein through cognate protein allosteric pathways. This work studied heat diffusion in the well-known PDZ-2 protein, and confirmed that this protein has two cognate allosteric pathways and that heat flows preferentially through these. Also, a new property was also observed for protein structures: heat diffuses asymmetrically through the structures. The underling structure of this asymmetrical heat flow was a normal length hydrogen bond (similar to 2.85 angstrom) that acted as a thermal rectifier. In contrast, thermal rectification was compromised in short hydrogen bonds (similar to 2.60 angstrom), giving rise to symmetrical thermal diffusion. Asymmetrical heat diffusion was due, on a higher scale, to the local, structural organization of residues that, in turn, was also mediated by hydrogen bonds. This asymmetrical/symmetrical energy flow may be relevant for allosteric signal communication directionality in proteins and for the control of heat flow in materials science.
机译:蛋白质中的变构通讯是结构生物化学的一个基本但尚未解决的问题。来自计算生物学的先前发现(Ota,N。; Agard,D.A.J.Mol.Biol.2005,351,345-354)提出热量通过关联的蛋白质变构途径在蛋白质中扩散。这项工作研究了众所周知的PDZ-2蛋白中的热扩散,并确认该蛋白具有两个同源变构途径,并且热量优先通过这些途径。此外,还观察到了蛋白质结构的新特性:热量不对称地扩散穿过结构。这种不对称热流的基础结构是正常长度的氢键(类似于2.85埃),起着热整流器的作用。相反,热整流在短氢键(类似于2.60埃)中受到损害,从而导致对称的热扩散。不对称的热扩散在更大程度上归因于残基的局部结构组织,而残基又由氢键介导。这种不对称/对称的能量流可能与蛋白质中的变构信号通信方向性以及材料科学中的热流控制有关。

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