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From the Cover: Molecular transport through channels and pores: Effects of in-channel interactions and blocking

机译:从封面开始:通过通道和孔的分子运输:通道内相互作用和封闭的影响

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摘要

Facilitated translocation of molecules through channels and pores is of fundamental importance for transmembrane transport in biological systems. Several such systems have specific binding sites inside the channel, but a clear understanding of how the interaction between channel and molecules affects the flow is still missing. We present a generic analytical treatment of the problem that relates molecular flow to the first passage time across and the number of particles inside the channel. Both quantities depend in different ways on the channel properties. For the idealized case of noninteracting molecules, we find an increased flow whenever there is a binding site in the channel, despite an increased first passage time. In the more realistic case that molecules may block the channel, we find an increase of flow only up to a certain threshold value of the binding strength and a dependence on the sign of the concentration gradient, i.e., asymmetric transport. The optimal binding strength in that case is analyzed. In all cases the reason for transport facilitation is an increased occupation probability of a particle inside the channel that overcomes any increase in the first passage time because of binding.
机译:分子通过通道和孔的易位对于生物系统中的跨膜运输至关重要。几个这样的系统在通道内部具有特定的结合位点,但是仍然缺少对通道和分子之间的相互作用如何影响流动的清晰理解。我们提出了对该问题的一般分析处理,该问题将分子流与第一次通过时间和通道内颗粒的数量相关。两种数量均以不同方式取决于通道属性。对于非相互作用分子的理想情况,尽管通道的第一次通过时间增加,但只要通道中有结合位点,我们就会发现流量增加。在更现实的情况下,分子可能会阻塞通道,我们发现流量只会增加到一定的结合强度阈值,并且取决于浓度梯度的符号,即不对称转运。分析在这种情况下的最佳结合强度。在所有情况下,促进运输的原因是通道内颗粒占据的可能性增加,该颗粒克服了由于结合而导致的第一次通过时间的增加。

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