论文标题
亚abel陷阱中分子电动机的单分子fret动力学
Single-molecule FRET dynamics of molecular motors in an ABEL Trap
论文作者
论文摘要
分子电动机的单分子Förster共振能量转移(SMFRET)可以同时在高时空和空间分辨率下对其动力学和构象变化进行变换。但是,这种FRET调查的主要挑战是观察到足够长的行动分子而不限制其自然功能。抗棕色电动陷阱(ABEL TRAP)列出将SMFRET与分子限制结合在一起,以使观察时间最多几秒钟,同时消除了所讨论的分子的束缚表面附着的任何要求。此外,ABEL陷阱选择性捕获FRET活性分子的固有能力加速了数据采集过程。在这里,我们举例说明了ABEL陷阱在分子运动rep上进行延长的时间尺度测量值的能力,这对于去除前进的DNA复制机制和重新启动停滞不前的DNA复制之前,这对于去除蛋白质块至关重要。我们能够通过1 ms的时间分辨率监测高达6 s的单重分子,并在观察时间捕获多个构象切换事件。在这里,我们为ABEL陷阱的合理设计,构建和实施提供了逐步指南,用于SMFRET在体外检测REP。我们包括如何在陷阱站点建模电势并使用SMFRET轨迹的隐藏马尔可夫分析的详细信息。
Single-molecule Förster resonance energy transfer (smFRET) of molecular motors provides transformative insights into their dynamics and conformational changes both at high temporal and spatial resolution simultaneously. However, a key challenge of such FRET investigations is to observe a molecule in action for long enough without restricting its natural function. The Anti-Brownian ELectrokinetic Trap (ABEL trap) sets out to combine smFRET with molecular confinement to enable observation times of up to several seconds while removing any requirement of tethered surface attachment of the molecule in question. In addition, the ABEL trap's inherent ability to selectively capture FRET active molecules accelerates the data acquisition process. Here we exemplify the capabilities of the ABEL trap in performing extended timescale smFRET measurements on the molecular motor Rep, which is crucial for removing protein blocks ahead of the advancing DNA replication machinery and for restarting stalled DNA replication. We are able to monitor single Rep molecules up to 6 s with 1 ms time resolution capturing multiple conformational switching events during the observation time. Here we provide a step-by-step guide for the rational design, construction and implementation of the ABEL trap for smFRET detection of Rep in vitro. We include details of how to model the electric potential at the trap site and use Hidden Markov analysis of the smFRET trajectories.