类有机物
地穴
细胞生物学
细胞外基质
舱室(船)
生物
细胞外
细胞室
化学
上皮
细胞
分区(防火)
解剖
生物物理学
生物化学
海洋学
遗传学
内分泌学
地质学
酶
作者
Carlos Pérez‐González,Gerardo Ceada,Francesco Greco,Marija Matejčić,Manuel Gómez‐González,Natália Castro,Anghara Menéndez,Sohan Kale,Denis Krndija,Andrew G. Clark,Venkata Ram Gannavarapu,Adrián Álvarez-Varela,Pere Roca‐Cusachs,Eduard Batlle,Danijela Matic Vignjevic,Marino Arroyo,Xavier Trepat
标识
DOI:10.1038/s41556-021-00699-6
摘要
Intestinal organoids capture essential features of the intestinal epithelium such as crypt folding, cellular compartmentalization and collective movements. Each of these processes and their coordination require patterned forces that are at present unknown. Here we map three-dimensional cellular forces in mouse intestinal organoids grown on soft hydrogels. We show that these organoids exhibit a non-monotonic stress distribution that defines mechanical and functional compartments. The stem cell compartment pushes the extracellular matrix and folds through apical constriction, whereas the transit amplifying zone pulls the extracellular matrix and elongates through basal constriction. The size of the stem cell compartment depends on the extracellular-matrix stiffness and endogenous cellular forces. Computational modelling reveals that crypt shape and force distribution rely on cell surface tensions following cortical actomyosin density. Finally, cells are pulled out of the crypt along a gradient of increasing tension. Our study unveils how patterned forces enable compartmentalization, folding and collective migration in the intestinal epithelium.
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