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DetecDiv,一个通用的深度学习平台,用于自动细胞分裂跟踪和生存分析。

DetecDiv, a generalist deep-learning platform for automated cell division tracking and survival analysis.

机构信息

Department of Developmental Biology and Stem Cells, Institut de Génétique et de Biologie Moléculaire et Cellulaire, Strasbourg, France.

Centre National de la Recherche Scientifique, Strasbourg, France.

出版信息

Elife. 2022 Aug 17;11:e79519. doi: 10.7554/eLife.79519.

Abstract

Automating the extraction of meaningful temporal information from sequences of microscopy images represents a major challenge to characterize dynamical biological processes. So far, strong limitations in the ability to quantitatively analyze single-cell trajectories have prevented large-scale investigations to assess the dynamics of entry into replicative senescence in yeast. Here, we have developed DetecDiv, a microfluidic-based image acquisition platform combined with deep learning-based software for high-throughput single-cell division tracking. We show that DetecDiv can automatically reconstruct cellular replicative lifespans with high accuracy and performs similarly with various imaging platforms and geometries of microfluidic traps. In addition, this methodology provides comprehensive temporal cellular metrics using time-series classification and image semantic segmentation. Last, we show that this method can be further applied to automatically quantify the dynamics of cellular adaptation and real-time cell survival upon exposure to environmental stress. Hence, this methodology provides an all-in-one toolbox for high-throughput phenotyping for cell cycle, stress response, and replicative lifespan assays.

摘要

从显微镜图像序列中自动提取有意义的时间信息是描述动态生物学过程的主要挑战。到目前为止,定量分析单细胞轨迹的能力存在严重限制,这阻止了大规模的研究来评估酵母进入复制性衰老的动力学。在这里,我们开发了 DetecDiv,这是一种基于微流控的图像采集平台,结合了基于深度学习的软件,用于高通量单细胞分裂跟踪。我们表明,DetecDiv 可以高精度地自动重建细胞的复制寿命,并且与各种成像平台和微流控陷阱的几何形状具有相似的性能。此外,这种方法使用时间序列分类和图像语义分割提供全面的时间细胞指标。最后,我们表明,该方法可以进一步应用于自动量化细胞适应和实时细胞存活的动力学,以应对环境压力。因此,该方法为细胞周期、应激反应和复制寿命测定提供了一个用于高通量表型分析的一体化工具箱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/956e/9444243/ccb766c53e27/elife-79519-fig1.jpg

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