A Live-cell Image-based Machine Learning Strategy to Monitor Pluripotent Stem Cell Differentiation

诱导多能干细胞 干细胞 细胞生物学 细胞分化 生物 细胞 计算机科学 神经科学 胚胎干细胞 遗传学 基因
作者
Xiaochun Yang,Daichao Chen,Xin Dang,Jue Zhang,Yang Zhao
出处
期刊:Journal of Visualized Experiments [MyJOVE]
卷期号: (212)
标识
DOI:10.3791/66823
摘要

Pluripotent stem cell (PSC) technologies have been widely used in drug discovery, disease modeling, and regenerative medicine. However, available PSC-to-functional cell differentiation systems are impeded by problems of severe line-to-line and batch-to-batch variability. Precise control of cell differentiation in real time is therefore important. In this protocol, we describe a non-invasive and intelligent strategy that overcomes the variability in cell differentiation by using bright-field image-based machine learning. Taking PSC-to-cardiomyocyte differentiation as an example, this methodology provides detailed information for control of the initial PSC state, early assessment and intervention in differentiation conditions, and elimination of the misdifferentiated cell contamination, together realizing consistently high-quality differentiation from PSCs to functional cells. In principle, this strategy can be extended to other cell differentiation or reprogramming systems with multiple steps to support cell manufacturing, as well as to further our understanding of the mechanisms during cell fate conversion.

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