神经外胚层
神经上皮细胞
胚胎干细胞
诱导多能干细胞
生物
神经形成
细胞生物学
神经板
细胞命运测定
神经发育
神经干细胞
胚状体
神经科学
干细胞
神经管
胚胎发生
中胚层
遗传学
胚胎
原肠化
基因
转录因子
作者
Xufeng Xue,Yubing Sun,Agnes M. Resto-Irizarry,Ye Yuan,Koh Meng Aw Yong,Yi Zheng,Shinuo Weng,Yue Shao,Yimin Chai,Lorenz Studer,Jianping Fu
出处
期刊:Nature Materials
[Springer Nature]
日期:2018-05-18
卷期号:17 (7): 633-641
被引量:185
标识
DOI:10.1038/s41563-018-0082-9
摘要
Classic embryological studies have successfully applied genetics and cell biology principles to understand embryonic development. However, it remains unresolved how mechanics, as an integral driver of development, is involved in controlling tissue-scale cell fate patterning. Here we report a micropatterned human pluripotent stem (hPS)-cell-based neuroectoderm developmental model, in which pre-patterned geometrical confinement induces emergent patterning of neuroepithelial and neural plate border cells, mimicking neuroectoderm regionalization during early neurulation in vivo. In this hPS-cell-based neuroectoderm patterning model, two tissue-scale morphogenetic signals-cell shape and cytoskeletal contractile force-instruct neuroepithelial/neural plate border patterning via BMP-SMAD signalling. We further show that ectopic mechanical activation and exogenous BMP signalling modulation are sufficient to perturb neuroepithelial/neural plate border patterning. This study provides a useful microengineered, hPS-cell-based model with which to understand the biomechanical principles that guide neuroectoderm patterning and hence to study neural development and disease.
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