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Detecting and Tracking the Tips of Fluorescently Labeled Mitochondria in U2OS Cells

机译:检测和跟踪U2OS细胞中荧光标记的线粒体的尖端

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We present a method for automatically detecting the tips of fluorescently labeled mitochondria. The method is based on a Random Forest classifier, which is trained on small patches extracted from con-focal microscope images of U2OS human osteosarcoma cells. We then adopt a particle tracking framework for tracking the detected tips, and quantify the tracking accuracy on simulated data. Finally, from images of U2OS cells, we quantify changes in mitochondrial mobility in response to the disassembly of microtubules via treatment with Nocodazole. The results show that our approach provides efficient tracking of the tips of mitochondria, and that it enables the detection of disease-associated changes in mitochondrial motility.
机译:我们提出了一种自动检测荧光标记的线粒体尖端的方法。该方法基于随机森林分类器,该分类器在从U2OS人骨肉瘤细胞的共聚焦显微镜图像中提取的小斑块上进行训练。然后,我们采用粒子跟踪框架来跟踪检测到的技巧,并量化对模拟数据的跟踪精度。最后,从U2OS细胞的图像中,我们通过用Nocodazole的处理来量化响应于微管拆卸的线粒体活动性变化。结果表明,我们的方法可有效跟踪线粒体的尖端,并能够检测与疾病相关的线粒体运动性变化。

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