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A high-content image-based method for quantitatively studying context-dependent cell population dynamics

机译:一种基于高含量图像的方法用于定量研究上下文相关的细胞群体动力学

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摘要

Tumor progression results from a complex interplay between cellular heterogeneity, treatment response, microenvironment and heterocellular interactions. Existing approaches to characterize this interplay suffer from an inability to distinguish between multiple cell types, often lack environmental context, and are unable to perform multiplex phenotypic profiling of cell populations. Here we present a high-throughput platform for characterizing, with single-cell resolution, the dynamic phenotypic responses (i.e. morphology changes, proliferation, apoptosis) of heterogeneous cell populations both during standard growth and in response to multiple, co-occurring selective pressures. The speed of this platform enables a thorough investigation of the impacts of diverse selective pressures including genetic alterations, therapeutic interventions, heterocellular components and microenvironmental factors. The platform has been applied to both 2D and 3D culture systems and readily distinguishes between (1) cytotoxic versus cytostatic cellular responses; and (2) changes in morphological features over time and in response to perturbation. These important features can directly influence tumor evolution and clinical outcome. Our image-based approach provides a deeper insight into the cellular dynamics and heterogeneity of tumors (or other complex systems), with reduced reagents and time, offering advantages over traditional biological assays.
机译:肿瘤进展是由于细胞异质性,治疗反应,微环境和异细胞相互作用之间的复杂相互作用所致。表征这种相互作用的现有方法遭受无法区分多种细胞类型的困扰,常常缺乏环境背景,并且无法对细胞群体进行多重表型分析。在这里,我们提供了一个高通量平台,用于以单细胞分辨率表征标准生长过程中以及对多种共同出现的选择性压力的反应中异质细胞群体的动态表型反应(即形态变化,增殖,凋亡)。该平台的速度使您能够彻底调查各种选择压力的影响,包括基因改变,治疗干预,异细胞成分和微环境因素。该平台已应用于2D和3D培养系统,可以轻松地区分(1)细胞毒性反应与细胞抑制性细胞反应; (2)形态特征随时间的变化以及对微扰的响应。这些重要特征可以直接影响肿瘤的发展和临床结果。我们基于图像的方法以更少的试剂和时间提供了对肿瘤(或其他复杂系统)的细胞动力学和异质性的更深入了解,与传统的生物检测方法相比具有优势。

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