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Stochastic microswimming model of ribosome motion on the polysome

机译:高瘤运动的随机微纤维模型

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In this work we assume that the ribosome propels itself during the translocation step of the translation process of protein synthesis by running a cycle of stochastically generated conformational changes involving its two subunits. This cycle includes only two experimentally found ribosome shape changes. The main result is an analytic expression for ribosome's average swimming speed on a polysome, where the ribosome is in the presence of other ribosomes. Relevant geometric parameters of ribosome deformations are calculated first by solving a deterministic problem where the ribosome runs a cycle of prescribed conformational changes. The method of reflections and pairwise additivity are used to obtain the stresses and forces needed to apply the multiparticle reciprocal theorem. Ribosome's average velocity when it runs the corresponding stochastic cycle of deformations is calculated assuming independence among the conformational cycles of different ribosomes on the polysome. The results obtained show that swimming in tandem on the polysome allows the ribosome to reach any typical subcellular speed with deformations whose amplitude is of a smaller size than when it swims alone in the fluid. Also, the flow organized by its swimming stroke becomes more determinant for its motion than random diffusion, compared to the solitary ribosome.
机译:在这项工作中,我们假设核糖体在蛋白质合成翻译过程的易位步骤中,通过运行一个涉及其两个亚基的随机生成的构象变化循环来推动自身。这个循环只包括两个实验发现的核糖体形状变化。主要结果是核糖体在多聚体上的平均游动速度的解析表达式,其中核糖体与其他核糖体共存。核糖体变形的相关几何参数首先通过解决一个确定性问题来计算,其中核糖体运行一个规定的构象变化周期。反射法和两两相加法用于获得应用多粒子互等定理所需的应力和力。假设多聚体上不同核糖体的构象周期相互独立,计算核糖体在相应的随机变形周期中的平均速度。结果表明,核糖体在多聚体上的串联游动可以使核糖体达到任何典型的亚细胞速度,其变形幅度比单独在流体中游动时小。此外,与单独的核糖体相比,由其游泳笔划组织的流动对其运动的决定作用更大,而不是随机扩散。

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