| Literature DB >> 29434303 |
Thomas C von Erlach1,2,3, Sergio Bertazzo1,4, Michele A Wozniak5, Christine-Maria Horejs1,2,3, Stephanie A Maynard1,2,3, Simon Attwood2, Benjamin K Robinson2, Hélène Autefage1,2,3, Charalambos Kallepitis1,2,3, Armando Del Río Hernández1, Christopher S Chen5,6,7, Silvia Goldoni8,9,10, Molly M Stevens11,12,13.
Abstract
Cell size and shape affect cellular processes such as cell survival, growth and differentiation1-4, thus establishing cell geometry as a fundamental regulator of cell physiology. The contributions of the cytoskeleton, specifically actomyosin tension, to these effects have been described, but the exact biophysical mechanisms that translate changes in cell geometry to changes in cell behaviour remain mostly unresolved. Using a variety of innovative materials techniques, we demonstrate that the nanostructure and lipid assembly within the cell plasma membrane are regulated by cell geometry in a ligand-independent manner. These biophysical changes trigger signalling events involving the serine/threonine kinase Akt/protein kinase B (PKB) that direct cell-geometry-dependent mesenchymal stem cell differentiation. Our study defines a central regulatory role by plasma membrane ordered lipid raft microdomains in modulating stem cell differentiation with potential translational applications.Entities:
Mesh:
Year: 2018 PMID: 29434303 PMCID: PMC5901718 DOI: 10.1038/s41563-017-0014-0
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841