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Development of a motion-based cell-counting system for Trypanosoma parasite using a pattern recognition approach

机译:使用模式识别识别方法的促锥形瘤寄生虫的运动基细胞计数系统的发展

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摘要

Automated cell counters that utilize still images of sample cells are widely used. However, they are not well suited to counting slender, aggregate-prone microorganisms such as Trypanosoma cruzi. Here, we developed a motion-based cell-counting system, using an image-recognition method based on a cubic higher-order local auto-correlation feature. The software successfully estimated the cell density of dispersed, aggregated, as well as fluorescent parasites by motion pattern recognition. Loss of parasites activeness due to drug treatment could also be detected as a reduction in apparent cell count, which potentially increases the sensitivity of drug screening assays. Moreover, the motion-based approach enabled estimation of the number of parasites in a co-culture with host mammalian cells, by disregarding the presence of the host cells as a static background.
机译:利用样品细胞的静止图像的自动细胞计数器被广泛使用。 然而,它们并不适合计算细长,聚集的易受微生物,例如锥虫瘤Cruzi。 这里,我们开发了一种基于运动的小区计数系统,使用基于立方高阶本地自相关特征的图像识别方法。 该软件通过运动模式识别成功地估计了分散,聚集的和荧光寄生虫的细胞密度。 由于药物治疗导致的寄生虫活性的丧失也可以检测到表观细胞计数的降低,这可能增加了药物筛选测定的敏感性。 此外,通过忽视宿主细胞作为静态背景,使基于运动的方法能够通过宿主哺乳动物细胞估计与宿主哺乳动物细胞的寄生虫的数量。

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