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Adaptive platform for fluorescence microscopy-based high-content screening

机译:基于荧光显微镜的高内涵筛选的自适应平台

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Fluorescence microscopy has become a widely used tool for the study of medically relevant intra- and intercellular processes. Extracting meaningful information out of a bulk of acquired images is usually performed during a separate post-processing task. Thus capturing raw data results in an unnecessary huge number of images, whereas usually only a few images really show the particular information that is searched for. Here we propose a novel automated high-content microscope system, which enables experiments to be carried out with only a minimum of human interaction. It facilitates a huge speed-increase for cell biology research and its applications compared to the widely performed workflows. Our fluorescence microscopy system can automatically execute application-dependent data processing algorithms during the actual experiment. They are used for image contrast enhancement, cell segmentation and/or cell property evaluation. On-the-fly retrieved information is used to reduce data and concomitantly control the experiment process in real-time. Resulting in a closed loop of perception and action the system can greatly decrease the amount of stored data on one hand and increases the relative valuable data content on the other hand. We demonstrate our approach by addressing the problem of automatically finding cells with a particular combination of labeled receptors and then selectively stimulate them with antagonists or agonists. The results are then compared against the results of traditional, static systems.
机译:荧光显微镜已经成为研究药物和细胞内过程的普遍用工具。在单独的后处理任务期间通常执行从大部分获取图像中提取有意义的信息。因此,捕获原始数据导致不必要的大量图像,而通常只有几个图像真正显示了搜索的特定信息。在这里,我们提出了一种新颖的自动化高含量显微镜系统,其使实验能够以最少的人类相互作用进行。与广泛执行的工作流程相比,它有助于细胞生物学研究及其应用的巨大速度。我们的荧光显微镜系统可以在实际实验期间自动执行应用相关的数据处理算法。它们用于图像对比增强,细胞分段和/或细胞性质评估。在线上检索的信息用于减少数据并实时地控制实验过程。导致闭环的感知和动作,系统可以一方面大大降低存储的数据量,另一方面增加了相对有价值的数据内容。我们通过解决具有标记受体的特定组合的自动查找细胞的问题来证明我们的方法,然后选择性地刺激与拮抗剂或激动剂。然后将结果与传统静态系统的结果进行比较。

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