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Role of the potential landscape on the single-file diffusion through channels

机译:潜在格局对单文件通过渠道传播的作用

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Transport of colloid particles through narrow channels is ubiquitous in cell biology as well as becoming increasingly important for microfluidic applications or targeted drug delivery. Membrane channels in cells are useful models for artificial designs because of their high efficiency, selectivity, and robustness to external fluctuations. Here, we model the passive channels that let cargo simply diffuse through them, affected by a potential profile along the way. Passive transporters achieve high levels of efficiency and specificity from binding interactions with the cargo inside the channel. This however leads to a paradox: why should channels which are so narrow that they are blocked by their cargo evolve to have binding regions for their cargo if that will effectively block them? Using Brownian dynamics simulations, we show that different potentials, notably symmetric, increase the flux through narrow passive channels - and investigate how shape and depth of potentials influence the flux. We find that there exist optimal depths for certain potential shapes and that it is most efficient to apply a small force over an extended region of the channel. On the other hand, having several spatially discrete binding pockets will not alter the flux significantly. We also explore the role of many-particle effects arising from pairwise particle interactions with their neighbours and demonstrate that the relative changes in flux can be accounted for by the kinetics of the absorption reaction at the end of the channel. (C) 2014 AIP Publishing LLC.
机译:胶体颗粒通过狭窄通道的运输在细胞生物学中无处不在,并且对于微流控应用或靶向药物递送变得越来越重要。细胞中的膜通道由于其高效率,高选择性和对外部波动的鲁棒性,因此是用于人工设计的有用模型。在这里,我们对被动通道进行建模,这些通道使货物简单地通过它们扩散,并受到沿途的潜在轮廓的影响。被动转运蛋白通过与通道内货物的结合相互作用实现高水平的效率和特异性。但是,这导致了一个悖论:为什么如此狭窄以至于被货物堵塞的通道应该演变为具有有效的货物束缚区,而这将有效地阻塞它们呢?使用布朗动力学仿真,我们显示出不同的电势,尤其是对称电势,会增加通过狭窄无源通道的通量-并研究电势的形状和深度如何影响通量。我们发现对于某些潜在形状存在最佳深度,并且在通道的扩展区域上施加较小的力是最有效的。另一方面,具有几个空间上离散的装订袋不会明显改变通量。我们还探讨了成对粒子与其邻居之间的相互作用所产生的多粒子效应的作用,并证明了通量的相对变化可以由通道末端吸收反应的动力学来解释。 (C)2014 AIP Publishing LLC。

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