生物
去湿
间充质干细胞
生物物理学
细胞外基质
形态发生
细胞生物学
解剖
纳米技术
生物化学
薄膜
材料科学
基因
作者
Tyler R. Huycke,Teemu J. Häkkinen,Hikaru Miyazaki,Vasudha Srivastava,Emilie Barruet,Christopher S. McGinnis,Ali Kalantari‐Hesari,Jake Cornwall-Scoones,Dedeepya Vaka,Qin Zhu,Hyunil Jo,Roger Oria,Valerie M. Weaver,William F. DeGrado,Matt Thomson,Krishna Garikipati,Dario Boffelli,Ophir D. Klein,Zev J. Gartner
出处
期刊:Cell
[Elsevier]
日期:2024-05-22
卷期号:187 (12): 3072-3089.e20
被引量:6
标识
DOI:10.1016/j.cell.2024.04.039
摘要
Tissue folds are structural motifs critical to organ function. In the intestine, bending of a flat epithelium into a periodic pattern of folds gives rise to villi, finger-like protrusions that enable nutrient absorption. However, the molecular and mechanical processes driving villus morphogenesis remain unclear. Here, we identify an active mechanical mechanism that simultaneously patterns and folds the intestinal epithelium to initiate villus formation. At the cellular level, we find that PDGFRA+ subepithelial mesenchymal cells generate myosin II-dependent forces sufficient to produce patterned curvature in neighboring tissue interfaces. This symmetry-breaking process requires altered cell and extracellular matrix interactions that are enabled by matrix metalloproteinase-mediated tissue fluidization. Computational models, together with in vitro and in vivo experiments, revealed that these cellular features manifest at the tissue level as differences in interfacial tensions that promote mesenchymal aggregation and interface bending through a process analogous to the active dewetting of a thin liquid film.
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