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Pattern Recognition in High-Content Cytomics Screens for Target Discovery - Case Studies in Endocytosis

机译:用于目标发现的高内涵细胞学筛查中的模式识别-内吞作用案例研究

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Finding patterns in time series of images requires dedicated approaches for the analysis, in the setup of the experiment, the image analysis as well as in the pattern recognition. The large volume of images that are used in the analysis necessitates an automated setup. In this paper, we illustrate the design and implementation of such a system for automated analysis from which phenotype measurements can be extracted for each object in the analysis. Using these measurements, objects are characterized into phenotypic groups through classification while each phenotypic group is analyzed individually. The strategy that is developed for the analysis of time series is illustrated by a case study on EGFR endocytosis. Endocytosis is regarded as a mechanism of attenuating epidermal growth factor receptor (EGFR) signaling and of receptor degradation. Increasingly, evidence becomes available showing that cancer progression is associated with a defect in EGFR endocytosis. Functional genomics technologies combine high-throughput RNA interference with automated fluorescence microscopy imaging and multi-parametric image analysis, thereby enabling detailed insight into complex biological processes, like EGFR endocytosis. The experiments produce over half a million images and analysis is performed by automated procedures. The experimental results show that our analysis setup for high-throughput screens provides scalability and robustness in the temporal analysis of an EGFR endocytosis model.
机译:在图像的时间序列中查找图案需要专用的分析方法,实验设置,图像分析以及图案识别。分析中使用的大量图像需要自动设置。在本文中,我们说明了这种用于自动分析的系统的设计和实现,可以从该系统中提取分析中每个对象的表型测量值。使用这些测量,通过分类将对象划分为表型组,同时分别对每个表型组进行分析。 EGFR内吞作用的案例研究说明了用于分析时间序列的策略。内吞作用被认为是减弱表皮生长因子受体(EGFR)信号传导和受体降解的机制。越来越多的证据表明,癌症的进展与EGFR内吞作用的缺陷有关。功能基因组学技术将高通量RNA干扰与自动荧光显微镜成像和多参数图像分析相结合,从而能够深入洞悉复杂的生物过程,例如EGFR的内吞作用。实验产生了超过一百万张图像,并通过自动化程序进行了分析。实验结果表明,我们用于高通量筛选的分析设置为EGFR胞吞模型的时间分析提供了可扩展性和鲁棒性。

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