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Interactive Computer-Assisted Tracking of Speckle Trajectories in Fluorescence Microscopy: Application to Actin Polymerization and Membrane Fusion

机译:交互式荧光显微镜中计算机辅助跟踪斑点轨迹:在肌动蛋白聚合和膜融合中的应用

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摘要

Analysis of particle trajectories in images obtained by fluorescence microscopy reveals biophysical properties such as diffusion coefficient or rates of association and dissociation. Particle tracking and lifetime measurement is often limited by noise, large mobilities, image inhomogeneities, and path crossings. We present Speckle TrackerJ, a tool that addresses some of these challenges using computer-assisted techniques for finding positions and tracking particles in different situations. A dynamic user interface assists in the creation, editing, and refining of particle tracks. The following are results from application of this program: 1), Tracking single molecule diffusion in simulated images. The shape of the diffusing marker on the image changes from speckle to cloud, depending on the relationship of the diffusion coefficient to the camera exposure time. We use these images to illustrate the range of diffusion coefficients that can be measured. 2), We used the program to measure the diffusion coefficient of capping proteins in the lamellipodium. We found values ∼0.5 μm2/s, suggesting capping protein association with protein complexes or the membrane. 3), We demonstrate efficient measuring of appearance and disappearance of EGFP-actin speckles within the lamellipodium of motile cells that indicate actin monomer incorporation into the actin filament network. 4), We marked appearance and disappearance events of fluorescently labeled vesicles to supported lipid bilayers and tracked single lipids from the fused vesicle on the bilayer. This is the first time, to our knowledge, that vesicle fusion has been detected with single molecule sensitivity and the program allowed us to perform a quantitative analysis. 5), By discriminating between undocking and fusion events, dwell times for vesicle fusion after vesicle docking to membranes can be measured.
机译:通过荧光显微镜获得的图像中的粒子轨迹分析揭示了生物物理特性,例如扩散系数或缔合和解离速率。粒子跟踪和寿命测量通常受到噪声,大迁移率,图像不均匀性和路径交叉的限制。我们介绍了Speckle TrackerJ,这是一种使用计算机辅助技术来解决其中一些挑战的工具,用于在不同情况下查找位置并跟踪粒子。动态的用户界面可帮助创建,编辑和完善粒子轨道。以下是该程序的应用结果:1),跟踪模拟图像中的单分子扩散。图像上的漫射标记的形状从散斑变为云状,这取决于漫射系数与相机曝光时间的关系。我们使用这些图像来说明可以测量的扩散系数范围。 2),我们使用该程序测量封端蛋白在lamellipodium中的扩散系数。我们发现值约为0.5μm 2 / s,表明将蛋白与蛋白复合物或膜的结合封闭了。 3),我们证明有效测量活动细胞的lamellipodium内EGFP-肌动蛋白斑点的出现和消失,表明肌动蛋白单体掺入肌动蛋白丝网络。 4),我们将荧光标记的囊泡的出现和消失事件标记在支持的脂质双层上,并从双层上的融合囊泡中追踪单个脂质。据我们所知,这是首次以单分子敏感性检测到囊泡融合,并且该程序使我们能够进行定量分析。 5),通过区分解吸事件和融合事件,可以测量在囊泡对接至膜之后囊泡融合的停留时间。

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