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Transcription Factor Competition Allows Embryonic Stem Cells to Distinguish Authentic Signals from Noise

机译:转录因子竞争使胚胎干细胞能够从噪音中区分出真实的信号

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摘要

Stem cells occupy variable environments where they must distinguish stochastic fluctuations from developmental cues. Here, we use optogenetics to investigate how the pluripotency network in embryonic stem cells (ESCs) achieves a robust response to differentiation cues but not to gene expression fluctuations. We engineered mouse ESCs to allow quantitative control over the endogenous mechanism of neural differentiation through a light-inducible Brn2 transgene and monitored differentiation status through a genome-integrated Nanog-GFP reporter. By exposing cells to pulses of Brn2, we find that the pluripotency network rejects Brn2 inputs that are below specific magnitude or duration thresholds, but allows rapid differentiation when both thresholds are satisfied. The filtering properties of the network arise through its positive feedback architecture and the intrinsic half-life of Nanog, which determines the duration threshold in the network. Together our results suggest that the dynamic properties of positive feedback networks might determine how inputs are classified as signal or noise by stem cells.
机译:干细胞占据可变的环境,在这些环境中,干细胞必须区分随机波动与发育线索。在这里,我们使用光遗传学来研究胚胎干细胞(ESC)中的多能网络如何对分化线索而不是对基因表达波动实现强大的响应。我们设计了小鼠ESC,以通过光诱导性Brn2转基因对神经分化的内源性机制进行定量控制,并通过基因组整合的Nanog-GFP报告基因监测分化状态。通过将细胞暴露于Brn2脉冲,我们发现多能网络拒绝了低于特定幅度或持续时间阈值的Brn2输入,但是当两个阈值都满足时,可以快速区分。网络的过滤特性是通过其正反馈体系结构和Nanog固有的半衰期产生的,Nanog的半衰期决定了网络中的持续时间阈值。我们的研究结果共同表明,正反馈网络的动态特性可能决定干细胞如何将输入分类为信号还是噪声。

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