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Machine learning-assisted high-content analysis of pluripotent stem cell-derived embryos in?vitro

机译:多能干细胞衍生胚胎的机器学习辅助高含量分析

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Stem cell-based embryo models by cultured pluripotent and extra-embryonic lineage stem cells are novel platforms to model early postimplantation development. We showed that induced pluripotent stem cells (iPSCs) could form ITS (iPSCs and trophectoderm stem cells) and ITX (iPSCs, trophectoderm stem cells, and XEN cells) embryos, resembling the early gastrula embryo developed in?vivo . To facilitate the efficient and unbiased analysis of the stem cell-based embryo model, we set up a machine learning workflow to extract multi-dimensional features and perform quantification of ITS embryos using 3D images collected from a high-content screening system. We found that different PSC lines differ in their ability to form embryo-like structures. Through high-content screening of small molecules and cytokines, we identified that BMP4 best promoted the morphogenesis of the ITS embryo. Our study established an innovative strategy to analyze stem cell-based embryo models and uncovered new roles of BMP4 in stem cell-based embryo models.
机译:基于干细胞的胚胎模型通过培养的多能和胚胎谱系干细胞是模拟早期后后期开发的新平台。我们表明,诱导的多能干细胞(IPSC)可以形成其(IPSC和促肾小组干细胞)和ITX(IPSC,促肾小组干细胞和Xen细胞)胚胎,类似于在α体内发育的早期胃肠胚胎。为了促进对基于干细胞的胚胎模型的高效和无偏见分析,我们设置了机器学习工作流程以提取多维特征,并使用从高内容筛选系统收集的3D图像进行其胚胎的量化。我们发现不同的PSC线路在其形成胚胎结构的能力方面不同。通过高含量的小分子和细胞因子筛选,我们认为BMP4最佳促进其胚胎的形态发生。我们的研究建立了一种创新策略,分析了干细胞的胚胎模型,并在基于干细胞的胚胎模型中发现了BMP4的新作用。

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