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Electroosmotic Trap Against the Electrophoretic Force Near a Protein Nanopore Reveals Peptide Dynamics During Capture and Translocation

机译:对蛋白质纳米孔附近的电泳力的电渗阱显示捕获和易位期间的肽动力学。

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We report on the ability to control the dynamics of a single peptide capture and passage across a voltage-biased, alpha-hemolysin nanopore (alpha-HL), under conditions that the electroosmotic force exerted on the analyte dominates the electrophoretic transport. We demonstrate that by extending outside the nanopore, the electroosmotic force is able to capture a peptide at either the lumen or vestibule entry of the nanopore, and transiently traps it inside the nanopore, against the electrophoretic force. Statistical analysis of the resolvable dwell-times of a metastable trapped peptide, as it occupies either the beta-barrel or vestibule domain of the alpha-HL nanopore, reveals rich kinetic details regarding the direction and rates of stochastic movement of a peptide inside the nanopore. The presented approach demonstrates the ability to shuttle and study molecules along the passage pathway inside the nanopore, allows to identify the mesoscopic trajectory of a peptide exiting the nanopore through either the vestibule or beta-barrel moiety, thus providing convincing proof of a molecule translocating the pore. The kinetic analysis of a peptide fluctuating between various microstates inside the nanopore, enabled a detailed picture of the free energy description of its interaction with the alpha-HL nanopore. When studied at the limit of vanishingly low transmembrane potentials, this provided a thermodynamic description of peptide reversible binding to and within the alpha-HL nanopore, under equilibrium conditions devoid of electric and electroosmotic contributions.
机译:我们报告的能力来控制单个肽捕获和通过电压偏置,α-溶血素纳米孔(alpha-HL)的动力学,在电渗力施加于分析物占主导地位的条件下。我们证明了通过延伸到纳米孔之外,电渗力能够在纳米孔的内腔或前庭入口处捕获肽,并逆着电泳力将其瞬时捕获在纳米孔内。由于亚稳态捕获的肽占据了α-HL纳米孔的β桶或前庭结构域,因此可解析的驻留时间的统计分析揭示了有关肽在纳米孔内部随机移动的方向和速率的丰富动力学细节。提出的方法展示了沿着纳米孔内部的穿梭通道穿梭和研究分子的能力,允许鉴定通过前庭或β-桶部分离开纳米孔的肽的介观轨迹,从而提供令人信服的分子移位的证据。毛孔。对在纳米孔内部各种微状态之间波动的肽进行动力学分析,可以详细描述其与α-HL纳米孔相互作用的自由能。当在极低的跨膜电位极限下进行研究时,这提供了在没有电和电渗作用的平衡条件下肽可逆结合到α-HL纳米孔并在其中的热力学描述。

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