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Polymerisation force of a rigid filament bundle: diffusive interaction leads to sublinear force-number scaling

机译:刚性长丝束的聚合力:扩散互动导致载载力 - 数缩放

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Polymerising filaments generate force against an obstacle, as in, e.g., microtubule-kinetochore interactions in the eukaryotic cell. Earlier studies of this problem have not included explicit three-dimensional monomer diffusion, and consequently, missed out on two important aspects: (i) the barrier, even when it is far from the polymers, affects free diffusion of monomers and reduces their adsorption at the tips, while (ii) parallel filaments could interact through the monomer density field (“diffusive coupling”), leading to negative interference between them. In our study, both these effects are included and their consequences investigated in detail. A mathematical treatment based on a set of continuum Fokker-Planck equations for combined filament-wall dynamics suggests that the barrier-induced monomer depletion reduces the growth velocity and also the stall force, while the total force produced by many filaments remains additive. However, Brownian dynamics simulations show that the linear force-number scaling holds only when the filaments are far apart; when they are arranged close together, forming a bundle, sublinear scaling of force with number appears, which could be attributed to diffusive interaction between the growing polymer tips.
机译:聚合长丝产生抵抗障碍物的力,如例如微管 - Kinetochore在真核细胞中的相互作用。早期研究该问题并未包括明确的三维单体扩散,因此,错过了两个重要方面:(i)屏障,即使它远离聚合物,也会影响单体的自由扩散并降低它们的吸附尖端,而(ii)平行的长丝可以通过单体密度场(“扩散耦合”)相互作用,导致它们之间的负干扰。在我们的研究中,包括这些效应并详细调查了它们的后果。基于一组连续丝壁动力学的连续型Fokker-Planck方程的数学处理表明,屏障诱导的单体耗尽降低了生长速度和失速力,而许多长丝产生的总力保持添加剂。然而,布朗尼动态模拟表明,仅当长丝相距较远时才能保持线性力量缩放;当它们被布置在一起时,形成束时,出现具有数量的力量的乘以力缩放,这可能归因于生长聚合物尖端之间的扩散相互作用。

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