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Nanopore Sensing of Protein Folding

机译:纳米孔感应蛋白质折叠

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摘要

Single-molecule studies of protein folding hold keys to unveiling protein folding pathways and elusive intermediate folding states attractive pharmaceutical targets. Although conventional single-molecule approaches can detect folding intermediates, they presently lack throughput and require elaborate labeling. Here, we theoretically show that measurements of ionic current through a nanopore containing a protein can report on the protein's folding state. Our all-atom molecular dynamics (MD) simulations show that the unfolding of a protein lowers the nanopore ionic current, an effect that originates from the reduction of ion mobility in proximity to a protein. Using a theoretical model, we show that the average change in ionic current produced by a folding unfolding transition is detectable despite the orientational and conformational heterogeneity of the folded and unfolded states. By analyzing millisecond-long all-atom MD simulations of multiple protein transitions, we show that a nanopore ionic current recording can detect folding unfolding transitions in real time and report on the structure of folding intermediates.
机译:蛋白质折叠键的单分子研究揭示蛋白质折叠途径和难以置信的中间折叠状态有吸引力的药物靶标。虽然传统的单分子方法可以检测折叠中间体,但它们目前缺乏产量,并且需要精细标记。在这里,我们理论上表明,通过含有蛋白质的纳米孔的离子电流的测量可以报告蛋白质的折叠状态。我们的全原子分子动力学(MD)模拟表明,蛋白质的展开降低了纳米孔离子电流,这是源自对蛋白质的邻近离子迁移率的降低的效果。使用理论模型,我们表明,尽管折叠和展开状态的取向和构象的异质性,但是通过折叠展开转变产生的离子电流的平均变化是可检测的。通过分析多个蛋白转换的毫秒全原子MD模拟,我们表明纳米孔离子电流记录可以实时检测折叠展开过渡并报告折叠中间体的结构。

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