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Dense Mapping of Intracellular Diffusion and Drift from Single-Particle Tracking Data Analysis

机译:单颗粒跟踪数据分析的细胞内扩散和漂移的密集映射

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It is of primary interest for biologists to be able to visualize the dynamics of proteins within the cell. In this paper, we propose a new mapping method to robustly estimate dynamics in the entire cell from particle tracks. To obtain satisfying diffusion and drift maps, we use a spatiotemporal kernel estimator. Trajectory classification data is used as input and allows to automatically label particle movements into three classes: confined motion (or subdiffusion), Brownian motion, and directed motion (or superdiffusion). We then use this information to calculate diffusion coefficient and drift maps separately on each class of motion.
机译:对于生物学家而言,最重要的是能够可视化细胞内蛋白质的动态。在本文中,我们提出了一种新的映射方法,可以从粒子轨道中稳健地估计整个单元中的动力学。为了获得令人满意的扩散图和漂移图,我们使用时空核估计器。轨迹分类数据用作输入,并允许将粒子运动自动标记为三类:受限运动(或子扩散),布朗运动和定向运动(或超扩散)。然后,我们使用此信息来分别计算每种运动类别的扩散系数和漂移图。

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