A single-cell resolved cell-cell communication model explains lineage commitment in hematopoiesis

Megan Franke, Adam L. Maclean
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引用次数: 7

Abstract

Cells do not function in isolation. Arguably, every cell fate decision occurs in response to environmental signals. In many cases cell-cell communication alters the dynamics of a cell’s internal gene regulatory network to initiate cell fate transitions, yet models rarely take this into account. Here we develop a multiscale perspective to study the granulocyte-monocyte vs. megakaryocyte-erythrocyte fate decisions. This transition is dictated by the GATA1-PU.1 network, a classical example of a bistable cell fate system. We show that, for a wide range of cell communication topologies, even subtle changes in signaling can have pronounced effects on cell fate decisions. We go on to show how cell-cell coupling through signaling can spontaneously break the symmetry of a homogenous cell population. Noise, both intrinsic and extrinsic, shapes the decision landscape profoundly, and affects the transcriptional dynamics underlying this important hematopoietic cell fate decision-making system.
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单细胞分解细胞-细胞通讯模型解释了造血中的谱系承诺
细胞不是孤立地起作用的。可以说,每个细胞的命运决定都是对环境信号的反应。在许多情况下,细胞间的通讯改变了细胞内部基因调控网络的动态,从而启动细胞命运的转变,然而模型很少考虑到这一点。在这里,我们发展了一个多尺度的视角来研究粒细胞-单核细胞与巨核细胞-红细胞的命运决定。这种转变是由GATA1-PU决定的。1网络,双稳态细胞命运系统的经典例子。我们表明,对于广泛的细胞通信拓扑结构,即使信号的细微变化也会对细胞命运的决定产生明显的影响。我们将继续展示细胞-细胞耦合如何通过信号传导自发地打破同质细胞群的对称性。噪音,无论是内在的还是外在的,都深刻地塑造了决策景观,并影响了这个重要的造血细胞命运决策系统的转录动力学。
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