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Automated Analysis of Time-Lapse Imaging of Nuclear Translocation by Retrospective Strategy and Its Application to STAT1 in HeLa Cells

机译:回顾性策略自动分析时空成像核易位及其在HeLa细胞STAT1中的应用

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摘要

Cell-based image analysis of time-lapse imaging is mainly challenged by faint fluorescence and dim boundaries of cellular structures of interest. To resolve these bottlenecks, a novel method was developed based on “retrospective” analysis for cells undergoing minor morphological changes during time-lapse imaging. We fixed and stained the cells with a nuclear dye at the end of the experiment, and processed the time-lapse images using the binary masks obtained by segmenting the nuclear-stained image. This automated method also identifies cells that move during the time-lapse imaging, which is a factor that could influence the kinetics measured for target proteins that are present mostly in the cytoplasm. We then validated the method by measuring interferon gamma (IFNγ) induced signal transducers and activators of transcription 1 (STAT1) nuclear translocation in living HeLa cells. For the first time, automated large-scale analysis of nuclear translocation in living cells was achieved by our novel method. The responses of the cells to IFNγ exhibited a significant drift across the population, but common features of the responses led us to propose a three-stage model of STAT1 import. The simplicity and automation of this method should enable its application in a broad spectrum of time-lapse studies of nuclear-cytoplasmic translocation.
机译:延时成像的基于细胞的图像分析主要受到目标细胞结构的荧光模糊和边界模糊的挑战。为了解决这些瓶颈,基于“回顾性”分析开发了一种新方法,用于在延时成像过程中经历微小形态变化的细胞。在实验结束时,我们用核染料将细胞固定并染色,然后使用通过分割核染色图像而获得的二元掩模处理延时图像。这种自动方法还可以识别在延时成像过程中移动的细胞,这是可能影响针对主要存在于细胞质中的靶蛋白动力学测定的一个因素。然后,我们通过测量干扰素γ(IFNγ)诱导的信号转导子和活HeLa细胞中转录1(STAT1)核转录激活子来验证该方法。通过我们的新方法,首次实现了对活细胞中核转运的自动大规模分析。细胞对IFNγ的反应在整个种群中表现出明显的漂移,但是反应的共同特征使我们提出了STAT1导入的三阶段模型。这种方法的简单性和自动化性应使其能够在核质质易位的延时研究的广泛范围内应用。

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