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An Adaptive Real-Time 3D Single Particle Tracking Method for Monitoring Viral First Contacts

机译:一种监测病毒第一触点的自适应实时3D单粒子跟踪方法

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Here, an adaptive real-time 3D single particle tracking method is proposed, which is capable of capturing heterogeneous dynamics. Using a real-time measurement of a rapidly diffusing particle's positional variance, the 3D precision adaptive real-time tracking (3D-PART) microscope adjusts activefeedback parameters to trade tracking speed for precision on demand. This technique is demonstrated first on immobilized fluorescent nanoparticles, with a greater than twofold increase in the lateral localization precision (≈25 to ≈11 nm at 1 ms sampling) as well as a smaller increase in the axial localization precision (≈ 68 to ≈45 nm). 3D-PART also shows a marked increase in the precision when tracking freely diffusing particles, with lateral precision increasing from ≈100 to ≈70 nm for particles diffusing at 4 μm~2 s~(-1), although with a sacrifice in the axial precision (≈250 to ≈350 nm). This adaptive microscope is then applied to monitoring the viral first contacts of virus-like particles to the surface of live cells, allowing direct and continuous measurement of the viral particle at initial contact with the cell surface.
机译:这里,提出了一种自适应实时3D单粒子跟踪方法,其能够捕获异构动态。使用快速漫射粒子位置方差的实时测量,3D精密自适应实时跟踪(3D部分)显微镜调整有效返回参数以进行贸易跟踪速度,以便按需精度。首先在固定化的荧光纳米粒子上证明该技术,横向定位精度(在1ms采样为1mm为1mm表示)的横向定位精度(≈25至≈10nm)的增加,以及轴向定位精度的较小增加(≈68至≈45 nm)。 3D部件还显示了在跟踪自由漫射颗粒时的精度的显着增加,横向精度从≈10至≈70nm增加,颗粒在4μm〜2 s〜(-1)中漫射,尽管轴向牺牲精度(≈250至≈350nm)。然后应用这种自适应显微镜以将病毒样颗粒的病毒的第一触点监测到活细胞表面,允许在与细胞表面的初始接触处直接和连续地测量病毒颗粒。

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