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Sensing force and charge at the nanoscale with a single-molecule tether

机译:感应力和电荷在纳米尺度上单分子范围

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摘要

Measuring the electrophoretic mobility of molecules is a powerful experimental approach for investigating biomolecular processes. A frequent challenge in the context of single-particle measurements is throughput, limiting the obtainable statistics. Here, we present a molecular force sensor and charge detector based on parallelised imaging and tracking of tethered double-stranded DNA functionalised with charged nanoparticles interacting with an externally applied electric field. Tracking the position of the tethered particle with simultaneous nanometre precision and microsecond temporal resolution allows us to detect and quantify the electrophoretic force down to the sub-piconewton scale. Furthermore, we demonstrate that this approach is suitable for detecting changes to the particle charge state, as induced by the addition of charged biomolecules or changes to pH. Our approach provides an alternative route to studying structural and charge dynamics at the single molecule level.
机译:测量的电泳淌度分子是一个功能强大的实验方法研究生物分子过程。挑战的环境中单粒子测量吞吐量,限制获得统计数据。分子的力传感器和探测器为基础系由成像和跟踪双链DNA functionalised带电纳米颗粒与外部交互应用电场。同时纳米粒子系精度和微秒时间分辨率使我们能够检测和量化电泳力sub-piconewton规模。方法适用于检测的变化粒子电荷状态,增加引起的的带电生物分子或改变博士方法提供了一种途径研究结构和电荷动力学单分子水平。

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