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Cation and anion transport through hydrophiiic pores in iipid bilayers

机译:阳离子和阴离子通过脂质双分子层中的疏水孔传输

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To understand the origin of transmembrane potentials,formation of transient pores,and the movement of anions and cations across lipid membranes,we have performed systematic atomistic molecular dynamics simulations of palmitoyl-oleoyl-phosphatidylcholine (POPC)lipids.A double bilayer setup was employed and different transmembrane potentials were generated by varying the anion (Cl~-)and cation (Na~+)concentrations in the two water compartments.A transmembrane potential of approx 350 mV was thereby generated per bilayer for a unit charge imbalance.For transmembrane potential differences of up to approx 1.4 V,the bilayers were stable,over the time scale of the simulations (10-50 ns).At larger imposed potential differences,one of the two bilayers breaks down through formation of a water pore,leading to both anion and cation translocations through the pore.The anions typically have a short residence time inside the pore,while the cations show a wider range of residence times depending on whether they bind to a lipid molecule or not.Over the time scale of the simulations,we do not observe the discharge of the entire potential difference,nor do we observe pore closing,although we observe that the size of the pore decreases as more ions translocate.We also observed a rare lipid flip-flop,in which a lipid molecule translocated from one bilayer leaflet to the opposite leaflet,assisted by the water pore.
机译:为了了解跨膜电位的起源,瞬时孔的形成以及阴离子和阳离子在脂质膜上的移动,我们对棕榈酰-油酰-磷脂酰胆碱(POPC)脂质进行了系统的原子分子动力学模拟。通过改变两个水室中阴离子(Cl〜-)和阳离子(Na〜+)的浓度可产生不同的跨膜电势,从而每双层产生约350 mV的跨膜电势,以实现单位电荷不平衡。在大约1.4 V的电压下,双层在整个模拟时间范围内(10-50 ns)是稳定的。在施加更大的电势差时,两个双层之一通过形成水孔而分解,导致两个阴离子阴离子在孔内的停留时间通常很短,而阳离子在不同时间范围内的停留时间范围更广它们是否与脂质分子结合。在模拟的时间范围内,我们没有观察到整个电势差的释放,也没有观察到孔的闭合,尽管我们观察到孔的大小随着离子的增加而减小我们还观察到了一种罕见的脂质触发器,其中脂质分子在水孔的辅助下从一个双层小叶转移到相反的小叶。

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