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A subpopulation model to analyze heterogeneous cell differentiation dynamics

机译:用于分析异种细胞分化动力学的亚种群模型

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Motivation: Cell differentiation is steered by extracellular signals that activate a cell type specific transcriptional program. Molecular mechanisms that drive the differentiation can be analyzed by combining mathematical modeling with population average data. For standard mathematical models, the population average data is informative only if the measurements come from a homogeneous cell culture. In practice, however, the differentiation efficiencies are always imperfect. Consequently, cell cultures are inherently mixtures of several cell types, which have different molecular mechanisms and exhibit quantitatively different dynamics. There is an urgent need for data-driven mathematical modeling approaches that can detect possible heterogeneity and, further, recover the molecular mechanisms from heterogeneous data.
机译:动机:细胞分化由激活细胞类型特异性转录程序的细胞外信号控制。可以通过将数学模型与总体平均数据相结合来分析驱动分化的分子机制。对于标准数学模型,仅当测量值来自同质细胞培养时,种群平均数据才有意义。然而,实际上,区分效率总是不完美的。因此,细胞培养物固有地是几种细胞类型的混合物,它们具有不同的分子机理并表现出定量上不同的动力学。迫切需要一种数据驱动的数学建模方法,该方法可以检测可能的异质性,并进一步从异质数据中恢复分子机制。

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