Department of Biosciences, Rice University, Houston, TX 77005, USA.
Department of Biosciences, Rice University, Houston, TX 77005, USA.
Cell Syst. 2024 May 15;15(5):445-461.e4. doi: 10.1016/j.cels.2024.04.001. Epub 2024 Apr 30.
BMP signaling is essential for mammalian gastrulation, as it initiates a cascade of signals that control self-organized patterning. As development is highly dynamic, it is crucial to understand how time-dependent combinatorial signaling affects cellular differentiation. Here, we show that BMP signaling duration is a crucial control parameter that determines cell fates upon the exit from pluripotency through its interplay with the induced secondary signal WNT. BMP signaling directly converts cells from pluripotent to extraembryonic fates while simultaneously upregulating Wnt signaling, which promotes primitive streak and mesodermal specification. Using live-cell imaging of signaling and cell fate reporters together with a simple mathematical model, we show that this circuit produces a temporal morphogen effect where, once BMP signal duration is above a threshold for differentiation, intermediate and long pulses of BMP signaling produce specification of mesoderm and extraembryonic fates, respectively. Our results provide a systems-level picture of how these signaling pathways control the landscape of early human development.
BMP 信号对于哺乳动物原肠胚形成至关重要,因为它启动了一系列信号级联反应,从而控制了自我组织的模式形成。由于发育过程高度动态,因此了解时间依赖性组合信号如何影响细胞分化是至关重要的。在这里,我们表明 BMP 信号持续时间是一个关键的控制参数,它通过与诱导的二级信号 WNT 的相互作用,决定从多能性退出后的细胞命运。BMP 信号直接将细胞从多能性转化为胚胎外命运,同时上调 Wnt 信号,促进原始条纹和中胚层的特化。通过对信号和细胞命运报告基因的活细胞成像以及一个简单的数学模型,我们表明该电路产生了一种时空形态发生效应,即一旦 BMP 信号持续时间超过分化的阈值,中间和长脉冲的 BMP 信号分别产生中胚层和胚胎外命运的特化。我们的结果提供了一个系统层面的图景,说明了这些信号通路如何控制早期人类发育的景观。