A novel self-organizing embryonic stem cell system reveals the role of Wnt signaling parameters in anterior-posterior patterning of the nervous system.

Siqi Du, Aryeh Warmflash
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Abstract

A Wnt activity gradient is essential for the formation of the anterior-posterior (AP) axis in all vertebrates. The relationship between the dynamics of Wnt signaling and specification of AP coordinates is difficult to study in mammalian embryos due to the inaccessibility of developing embryos and the difficulty of live imaging. Here, we developed an in vitro model of human neuroectoderm patterning, where the AP axis self-organizes along the radius of a micropatterned human pluripotent stem cell colony. We used this system to study the quantitative relationship between Wnt signaling in space and time and the resulting AP patterns. We found that rather than a smoothly varying gradient along the axis, signaling is elevated in midbrain compared to either surrounding region. The timing, rather than the amplitude or duration, of the Wnt response played the most important role in setting axial coordinates. These results establish a simple system for studying the patterning of the human nervous system and elucidate how cells interpret Wnt dynamics to determine their position along the AP axis.

一种新的自组织胚胎干细胞系统揭示了WNT信号参数在神经系统前后模式中的作用。
在所有脊椎动物中,Wnt活性梯度对于前后轴(AP)的形成至关重要。在哺乳动物胚胎中,由于发育中胚胎的不可接近性和实时成像的困难,Wnt信号的动态与AP坐标规范之间的关系难以研究。在这里,我们开发了一个体外的人类神经外胚层模式模型,其中前后轴沿着微模式的人类多能干细胞集落的半径自组织。我们使用该系统来研究Wnt信号在空间和时间上与由此产生的AP模式之间的定量关系。我们发现,与周围区域相比,中脑的信号传导水平升高,而不是沿轴平滑变化的梯度。Wnt响应的时间,而不是振幅或持续时间,在轴向坐标的设置中起着最重要的作用。这些结果为研究人类神经系统的模式建立了一个简单的系统,并阐明了细胞如何解释Wnt动力学以确定其沿AP轴的位置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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