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- W2096832005 endingPage "2018" @default.
- W2096832005 startingPage "2005" @default.
- W2096832005 abstract "ABSTRACT The forces that drive sea urchin primary invagination remain mysterious. To solve this mystery we have developed a set of finite element simulations that test five hypothesized mechanisms. Our models show that each of these mechanisms can generate an invagination; however, the mechanical properties of an epithelial sheet required for proper invagination are different for each mechanism. For example, we find that the gel swelling hypothesis of Lane et al. (Lane, M. C., Koehl, M. A. R., Wilt, F. and Keller, R. (1993) Development 117, 1049-1060) requires the embryo to possess a mechanically stiff apical extracellular matrix and highly deformable cells, whereas a hypothesis based on apical constriction of the epithelial cells requires a more compliant extracellular matrix. For each mechanism, we have mapped out a range of embryo designs that work. Additionally, the simulations predict specific cell shape changes accompanying each mechanism. This allows us to design experiments that can distinguish between different mechanisms, all of which can, in principle, drive primary invagination." @default.
- W2096832005 created "2016-06-24" @default.
- W2096832005 creator A5017454018 @default.
- W2096832005 creator A5017830725 @default.
- W2096832005 creator A5064537167 @default.
- W2096832005 creator A5066622659 @default.
- W2096832005 date "1995-07-01" @default.
- W2096832005 modified "2023-10-17" @default.
- W2096832005 title "How do sea urchins invaginate? Using biomechanics to distinguish between mechanisms of primary invagination" @default.
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- W2096832005 doi "https://doi.org/10.1242/dev.121.7.2005" @default.
- W2096832005 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/7635048" @default.
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