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Robust real-time 3D single-particle tracking using a dynamically moving laser spot

机译:使用动态移动激光斑的鲁棒实时3D单粒子跟踪

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摘要

Real-time three-dimensional (3D) single-particle tracking uses optical feedback to lock on to freely diffusing nanoscale fluorescent particles, permitting precise 3D localization and continuous spectroscopic interrogation. Here we describe a new method of real-time 3D single-particle tracking wherein a diffraction-limited laser spot is dynamically swept through the detection volume in three dimensions using a two-dimensional (2D) electro-optic deflector and a tunable acoustic gradient lens. This optimized method, called 3D dynamic photon localization tracking (3D-DyPLoT), enables high-speed real-time tracking of single silica-coated non-blinking quantum dots (similar to 30 nm diameter) with diffusive speeds exceeding 10 mu m(2)/s at count rates as low as 10 kHz, as well as YFP-labeled virus-like particles. The large effective detection area (1 mu m x 1 mu m x 4 mu m) allows the system to easily pick up fast-moving particles, while still demonstrating high localization precision (sigma(x) = 6.6 nm, sigma(y) = 8.7 nm, and sigma(z) = 15.6 nm). Overall, 3D-DyPLoT provides a fast and robust method for real-time 3D tracking of fast and lowly emitting particles, based on a single excitation and detection pathway, paving the way to more widespread application to relevant biological problems. (C) 2017 Optical Society of America
机译:实时三维(3D)单粒子跟踪使用光学反馈来锁定自由扩散纳米级荧光粒子,允许精确的3D定位和连续的光谱询问。在这里,我们描述了一种新的实时3D单粒子跟踪方法,其中使用二维(2D)电光偏转器和可调谐声学梯度透镜在三个尺寸中动态地扫过衍射限制激光点的新方法。这种被称为3D动态光子定位跟踪(3D-Dyplot)的优化方法,使单个二氧化硅涂覆的非闪烁量子点(类似于30nm直径类似)的高速实时跟踪,其漫射速度超过10μm(2 )/ s以低至10kHz的计数率,以及YFP标记的病毒样颗粒。大有效检测区域(1μmx1mu mx 4 mu m)允许系统容易地拾取快速移动的颗粒,同时仍然展示高分辨率精度(sigma(x)= 6.6nm,sigma(y)= 8.7nm ,σ(z)= 15.6 nm)。总的来说,3D-Dyplot提供了一种快速且坚固的方法,用于基于单一励磁和检测途径,提供快速和较低发射粒子的实时3D跟踪,铺平了更广泛应用于相关的生物问题的方式。 (c)2017年光学学会

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