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首页> 外文期刊>The Journal of Chemical Physics >Entropic potential field formed for a linear-motor protein near a filament: Statistical-mechanical analyses using simple models
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Entropic potential field formed for a linear-motor protein near a filament: Statistical-mechanical analyses using simple models

机译:细丝附近的线性运动蛋白形成的熵势场:使用简单模型的统计力学分析

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We report a new progress in elucidating the mechanism of the unidirectional movement of a linear-motor protein (e.g., myosin) along a filament (e.g., F-actin). The basic concept emphasized here is that a potential field is entropically formed for the protein on the filament immersed in solvent due to the effect of the translational displacement of solvent molecules. The entropic potential field is strongly dependent on geometric features of the protein and the filament, their overall shapes as well as details of the polyatomic structures. The features and the corresponding field are judiciously adjusted by the binding of adenosine triphosphate (ATP) to the protein, hydrolysis of ATP into adenosine diphosphate (ADP) +Pi, and release of Pi and ADP. As the first step, we propose the following physical picture: The potential field formed along the filament for the protein without the binding of ATP or ADP+Pi to it is largely different from that for the protein with the binding, and the directed movement is realized by repeated switches from one of the fields to the other. To illustrate the picture, we analyze the spatial distribution of the entropic potential between a large solute and a large body using the three-dimensional integral equation theory. The solute is modeled as a large hard sphere. Two model filaments are considered as the body: model 1 is a set of one-dimensionally connected large hard spheres and model 2 is a double helical structure formed by two sets of connected large hard spheres. The solute and the filament are immersed in small hard spheres forming the solvent. The major findings are as follows. The solute is strongly confined within a narrow space in contact with the filament. Within the space there are locations with sharply deep local potential minima along the filament, and the distance between two adjacent locations is equal to the diameter of the large spheres constituting the filament. The potential minima form a ringlike domain in model 1 while they form a pointlike one in model 2. We then examine the effects of geometric features of the solute on the amplitudes and asymmetry of the entropic potential field acting on the solute along the filament. A large aspherical solute with a cleft near the solute-filament interface, which mimics the myosin motor domain, is considered in the examination. Thus, the two fields in our physical picture described above are qualitatively reproduced. The factors to be taken into account in further studies are also discussed.
机译:我们报告了阐明线性电机蛋白(例如,肌球蛋白)沿着细丝(例如,F-肌动蛋白)的单向运动机理的新进展。这里强调的基本概念是,由于溶剂分子的平移位移的作用,在浸没在溶剂中的长丝上为蛋白质形成了一个熵场。熵势场强烈取决于蛋白质和细丝的几何特征,它们的整体形状以及多原子结构的细节。通过三磷酸腺苷(ATP)与蛋白质的结合,ATP水解为二磷酸腺苷(ADP)+ Pi以及Pi和ADP的释放,可以明智地调整特征和相应的领域。第一步,我们提供以下物理图像:沿细丝形成的未与ATP或ADP + Pi结合的蛋白质的势场与具有结合力的蛋白质的势场有很大不同,并且定向运动为通过重复从一个字段切换到另一个字段来实现。为了说明图片,我们使用三维积分方程理论分析了大溶质和大物体之间的熵势的空间分布。溶质被建模为一个大的硬球体。将两个模型细丝视为主体:模型1是一组一维连接的大硬球,模型2是由两组连接的大硬球形成的双螺旋结构。溶质和长丝浸入形成溶剂的小硬球中。主要发现如下。溶质强烈地限制在与长丝接触的狭窄空间内。在该空间内,沿着细丝存在一些具有极深的局部电势最小值的位置,并且两个相邻位置之间的距离等于构成细丝的大球体的直径。电位最小值在模型1中形成环形域,而在模型2中形成点状域。然后,我们研究了溶质的几何特征对沿细丝作用于溶质的熵势场的振幅和不对称性的影响。在检查中考虑了一个大的非球面溶质,在溶质-丝界面附近有裂口,它模仿了肌球蛋白的运动域。因此,定性地再现了上述物理图像中的两个场。还讨论了在进一步研究中要考虑的因素。

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