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Dynamics of Completely Unfolded and Native Proteins through Solid-State Nanopores as a Function of Electric Driving Force

机译:通过固态纳米孔完全展开的天然蛋白质的动力学与电动势的关系

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摘要

We report experimentally the dynamic properties of the entry and transport of unfolded and native proteins through a solid-state nanopore as a function of applied voltage, and we discuss the experimental data obtained as compared to theory. We show an exponential increase In the event frequency of current blockades and an exponential decrease in transport times as a function of the electric driving force. The normalized current blockage ratio remains constant or decreases for folded or unfolded proteins, respectively, as a function of the transmembrane potential. The unfolded protein is stretched under the electric driving force. The dwell time of native compact proteins in the pore is almost 1 order of magnitude longer than that of unfolded proteins, and the event frequency for both protein conformations is low. We discuss the possible phenomena hindering the transport of proteins through the pores, which could explain these anomalous dynamics, in particular, electro-osmotic counterflow and protein adsorption on the nanopore wall.
机译:我们通过实验报告了通过固态纳米孔进入和转运的未折叠蛋白和天然蛋白的动态特性,这是施加电压的函数,并且我们讨论了与理论相比获得的实验数据。我们显示,在当前封锁事件发生频率呈指数增长的情况下,运输时间随电驱动力呈指数增长。归一化的电流阻滞率对于折叠或未折叠的蛋白质分别保持恒定或减小,这取决于跨膜电位。展开的蛋白质在电驱动力的作用下被拉伸。天然紧致蛋白在孔中的停留时间比未折叠蛋白的停留时间长近1个数量级,两种蛋白构象的发生频率均较低。我们讨论了阻碍蛋白质通过孔运输的可能现象,这可以解释这些异常动力学,尤其是电渗透逆流和蛋白质在纳米孔壁上的吸附。

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