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Cytoplasmic streaming in plant cells: the role of wall slip

机译:植物细胞中的细胞质流:壁滑的作用

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摘要

We present a computer simulation study, via lattice Boltzmann simulations, of a microscopic model for cytoplasmic streaming in algal cells such as those of Chara corallina. We modelled myosin motors tracking along actin lanes as spheres undergoing directed motion along fixed lines. The sphere dimension takes into account the fact that motors drag vesicles or other organelles, and, unlike previous work, we model the boundary close to which the motors move as walls with a finite slip layer. By using realistic parameter values for actin lane and myosin density, as well as for endoplasmic and vacuole viscosity and the slip layer close to the wall, we find that this simplified view, which does not rely on any coupling between motors, cytoplasm and vacuole other than that provided by viscous Stokes flow, is enough to account for the observed magnitude of streaming velocities in intracellular fluid in living plant cells.
机译:我们通过晶格玻尔兹曼(Boltzmann)模拟,提供了一种计算机模拟研究,用于研究藻类细胞(如Chara Corallina)中细胞质流的微观模型。我们对沿着肌动蛋白泳道跟踪的球蛋白进行建模,该球蛋白沿固定线进行定向运动。球体尺寸考虑了马达拖动小泡或其他细胞器这一事实,并且与以前的工作不同,我们对马达作为具有有限滑移层的壁移动的边界进行了建模。通过使用肌动蛋白泳道和肌球蛋白密度,内质和液泡粘度以及靠近壁的滑爽层的实际参数值,我们发现该简化视图不依赖于马达,细胞质和液泡之间的任何耦合。比粘性斯托克斯流提供的流量要大,足以说明活植物细胞中细胞内液中观察到的流动速度大小。

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