William B. Carpenter, Abhijit A. Lavania, Allison H. Squires, W. E. Moerner
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引用次数: 0
Abstract
Today, biomolecular nanoparticles are prevalent as diagnostic tools and molecular delivery carriers, and it is particularly useful to examine individuals within a sample population to quantify the variations between objects and directly observe the molecular dynamics involving these objects. Using interferometric scattering as a highly sensitive label-free detection scheme, we recently developed the interferometric scattering anti-Brownian electrokinetic (ISABEL) trap to hold a single nanoparticle in solution for extended optical observation. In this perspective, we describe how we implemented this trap, how it extends the capabilities of previous ABEL traps, and how we have begun to study individual carboxysomes, a fascinating biological carbon fixation nanocompartment. By monitoring single nanocompartments for seconds to minutes in the ISABEL trap using simultaneous interferometric scattering and fluorescence spectroscopy, we have demonstrated single-compartment mass measurements, cargo-loading trends, and redox sensing inside individual particles. These experiments benefit from rich multiplexed correlative measurements utilizing both scattering and fluorescence with many exciting future capabilities within reach.
如今,生物分子纳米粒子作为诊断工具和分子输送载体已十分普遍,对样本群体中的个体进行检测,以量化对象之间的变化并直接观察涉及这些对象的分子动力学尤其有用。利用干涉散射作为一种高灵敏度的无标记检测方案,我们最近开发出了干涉散射反布朗电动力(ISABEL)阱,可将单个纳米粒子固定在溶液中进行长时间的光学观测。在本文中,我们将介绍如何实现这种捕集器,它如何扩展了以前的 ABEL 捕集器的功能,以及我们如何开始研究单个羧基体--一种迷人的生物碳固定纳米区室。通过使用同步干涉散射和荧光光谱技术对 ISABEL 捕集器中的单个纳米小室进行数秒至数分钟的监测,我们展示了单个小室的质量测量、货物装载趋势以及单个颗粒内部的氧化还原传感。这些实验得益于利用散射和荧光进行的丰富的多路复用相关测量,未来有望实现许多令人兴奋的功能。
期刊介绍:
The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.