Basement membrane mechanics drives patterned response to developmental signalling
Raffaelli, A.; Wyatt, T. P. J.; Simon, C. S.; Wenger, L. M. D.; Niakan, K. K.; Paluch, E. K.; Chalut, K. J.
Show abstract
Precise spatiotemporal patterning of cell fate decisions during development, such as those accompanying gastrulation, has traditionally been attributed to morphogen gradients. Emerging evidence also points to a crucial role for mechanics in regulating cell fate decisions. Here, we uncover that basement membrane mechanics in human pluripotent stem cells (hPSCs) regulates the spatiotemporal response to gastrulation-inducing BMP4. Reducing mechanosensation via soft substrates or chemical inhibitors abolishes stereotypical spatial patterning of the BMP4 response in hPSC colonies. This loss arises from disrupted epithelial polarity and increased permeability, which enhance BMP receptor accessibility. Strikingly, apical exposure to soluble laminin similarly disrupts polarity and suppresses hPSC mechanosensing, phenocopying the soft substrates effect and suggesting feedback between polarity signaling and mechanosensing. Finally, softening the basement membrane in mouse embryos triggers ectopic and premature mesoderm differentiation, disrupting gastrulation patterning. Together, this study describes a mechanochemical feedback mechanism that establishes basement membrane mechanics as a key regulator of developmental patterning.
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