Department of Electrical and Computer Engineering, University of Victoria, 3800 Finnerty Road, Victoria, BC, Canada V8P5C2.
Nano Lett. 2023 Apr 12;23(7):2877-2882. doi: 10.1021/acs.nanolett.3c00208. Epub 2023 Mar 31.
Single molecule analysis of proteins in an aqueous environment without modification (e.g., labels or tethers) elucidates their biophysics and interactions relevant to drug discovery. By combining fringe-field dielectrophoresis with nanoaperture optical tweezers we demonstrate an order of magnitude faster time-to-trap for proteins when the counter electrode is outside of the solution. When the counter electrode is inside the solution (the more common configuration found in the literature), electrophoresis speeds up the trapping of polystyrene nanospheres, but this was not effective for proteins in general. Since time-to-trap is critical for high-thoughput analysis, these findings are a major advancement to the nanoaperture optical trapping technique for protein analysis.
在无需修饰(例如标记或连接物)的水溶液中对蛋白质进行单分子分析,可以阐明与药物发现相关的生物物理学和相互作用。通过将边缘场介电泳与纳米孔径光镊相结合,我们证明了当对电极位于溶液外部时,蛋白质的捕获时间可提高一个数量级。当对电极位于溶液内部(这是文献中更常见的配置)时,电泳会加快聚苯乙烯纳米球的捕获速度,但这对一般蛋白质通常并不有效。由于捕获时间对于高通量分析至关重要,因此这些发现对于蛋白质分析的纳米孔径光镊技术是一个重大进展。