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Effects of an Electric Field on the Conformational Transition of the Protein: A Molecular Dynamics Simulation Study

机译:电场对蛋白质构象转变的影响:分子动力学模拟研究

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摘要

The effect of the electric field on the conformational properties of the protein 1BBL was investigated by molecular dynamics simulations. Our simulation results clearly capture the structural transitions of the protein sample from helix to turn or random coil conformation induced by the increasing strength of the electric field. During our analysis, we found that the conformational stability is weakened, and the protein sample is stretched as an unfolded structure when it was exposed in a sufficiently high electric field. The characteristic time when the jump occurs in the time evolution curves of root mean square deviation (RMSD) and radius of gyration Rg decreases with increasing electric strength, which demonstrates the rapidly conformational transition that occurs. The number of intra-protein hydrogen bonds, which is the key factor for stabilizing the protein structure, is related to the overall size of the protein. The value of the dipole moment and characteristic time are both influenced by the strength, but are independent of the direction of the external field. The protein sample becomes rotated with the electric field direction. These conclusions provide a theoretical realization of understanding the protein conformational transition in an electric field and the guidance for anticipative applications.
机译:通过分子动力学模拟研究了电场对蛋白质1BBL构象性质的影响。我们的模拟结果清楚地捕获了蛋白质样品从螺旋结构转变为由电场强度增加引起的匝或随机线圈构象的结构转变。在我们的分析过程中,我们发现构象稳定性减弱,并且当蛋白质样品暴露在足够高的电场中时,蛋白质样品被拉伸为未折叠结构。均方根偏差(RMSD)和回转半径Rg的时间演变曲线中发生跳跃的特征时间随电强度的增加而减小,这表明发生了快速的构象转变。蛋白质内氢键的数量是稳定蛋白质结构的关键因素,它与蛋白质的整体大小有关。偶极矩的值和特征时间都受强度影响,但与外部磁场的方向无关。蛋白质样品沿电场方向旋转。这些结论为理解电场中蛋白质构象转变提供了理论上的认识,并为预期的应用提供了指导。

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