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Ceulular Imaging Data Analysis: Mircotubule Dynamics in Living Cell

机译:天空成像数据分析:生物细胞中的咪毛动胶动力学

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Microtubules are dynamic polymers that rapidly transition between states of growth, shortening, and pause. These dynamic events are critical for studying cellular processes such as the cancer drug effectiveness study. Typically, these events are quantified by imaging microtubule movements over time, which results in large data sets that require rigorous quantitative analysis. In most cases, the analysis was performed manually by the researcher. This process is tedious and prone to error and becomes a bottleneck in modern cancer research. Thus, an efficient, reliable, and rapid quantification method is in critical need. In this paper, we describe open contour-based tracking methods to automatically segment and track microtubule movements. We redefine the internal energy terms specifically for open snake, and examine different external energy terms for locating the end points of a microtubule. This algorithm has been validated using simulated images, untreated MCF-7 breast cancer cell lines, and cells treated with the microtubule-targeting chemotherapeutic agent, Taxol
机译:微管是动态聚合物,在生长,缩短和暂停的状态之间迅速过渡。这些动态事件对于研究诸如癌症药物效果研究的细胞过程至关重要。通常,这些事件通过在时间上成像微管运动而定量,这导致需要严格定量分析的大数据集。在大多数情况下,研究人员手动进行分析。这个过程繁琐,易于错误,并且成为现代癌症研究中的瓶颈。因此,有效,可靠和快速的量化方法是危急的需求。在本文中,我们描述了基于开放的基于轮廓的跟踪方法,以自动段和跟踪微管运动。我们重新定义专门用于开放蛇的内部能量术语,并检查不同的外部能量术语以定位微管的终点。使用模拟图像,未处理的MCF-7乳腺癌细胞系和用微管靶向化学治疗剂,紫杉醇处理的细胞验证了该算法。

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