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Increased robustness of early embryogenesis through collective decision-making by key transcription factors

机译:通过关键转录因子的集体决策提高早期胚胎发生的鲁棒性

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Background Understanding the mechanisms by which hundreds of diverse cell types develop from a single mammalian zygote has been a central challenge of developmental biology. Conrad H. Waddington, in his metaphoric “epigenetic landscape” visualized the early embryogenesis as a hierarchy of lineage bifurcations. In each bifurcation, a single progenitor cell type produces two different cell lineages. The tristable dynamical systems are used to model the lineage bifurcations. It is also shown that a genetic circuit consisting of two auto-activating transcription factors (TFs) with cross inhibitions can form a tristable dynamical system. Results We used gene expression profiles of pre-implantation mouse embryos at the single cell resolution to visualize the Waddington landscape of the early embryogenesis. For each lineage bifurcation we identified two clusters of TFs – rather than two single TFs as previously proposed – that had opposite expression patterns between the pair of bifurcated cell types. The regulatory circuitry among each pair of TF clusters resembled a genetic circuit of a pair of single TFs; it consisted of positive feedbacks among the TFs of the same cluster, and negative interactions among the members of the opposite clusters. Our analyses indicated that the tristable dynamical system of the two-cluster regulatory circuitry is more robust than the genetic circuit of two single TFs. Conclusions We propose that a modular hierarchy of regulatory circuits, each consisting of two mutually inhibiting and auto-activating TF clusters, can form hierarchical lineage bifurcations with improved safeguarding of critical early embryogenesis against biological perturbations. Furthermore, our computationally fast framework for modeling and visualizing the epigenetic landscape can be used to obtain insights from experimental data of development at the single cell resolution.
机译:背景技术从单一哺乳动物合子了解成百上千种不同细胞类型的机制一直是发育生物学的主要挑战。康拉德·H·沃丁顿(Conrad H. Waddington)在隐喻的“表观遗传景观”中将早期胚胎发生可视化为谱系分支。在每个分支中,单个祖细胞类型会产生两个不同的细胞谱系。三稳态动力学系统用于建模谱系分支。还显示了由两个具有交叉抑制作用的自激活转录因子(TFs)组成的遗传回路可以形成三稳态动力学系统。结果我们以单细胞分辨率使用植入前小鼠胚胎的基因表达谱来可视化早期胚胎发生的Waddington景观。对于每个谱系分支,我们确定了两个TF簇-而不是先前提出的两个单个TF-在成对的分支细胞类型之间具有相反的表达模式。每对TF簇之间的调节电路类似于一对单个TF的遗传电路。它由同一个集群的TF之间的正反馈和相对集群的成员之间的负互动组成。我们的分析表明,两个集群调节电路的三稳态动力学系统比两个单个TF的遗传电路更健壮。结论我们建议调节电路的模块化层次结构(每个层次结构由两个相互抑制和自动激活的TF簇组成)可以形成层次谱系分叉,从而更好地保护关键的早期胚胎发生免受生物干扰。此外,我们用于建模和可视化表观遗传景观的计算快速框架可用于从单细胞分辨率的发育实验数据中获得见解。

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