Cell-Cell Contact Area Affects Notch Signaling and Notch-Dependent Patterning.

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Version: Author's accepted manuscript
License: CC BY-NC-ND 4.0
Serval ID
serval:BIB_FA8DF526122D
Type
Article: article from journal or magazin.
Collection
Publications
Institution
Title
Cell-Cell Contact Area Affects Notch Signaling and Notch-Dependent Patterning.
Journal
Developmental cell
Author(s)
Shaya O., Binshtok U., Hersch M., Rivkin D., Weinreb S., Amir-Zilberstein L., Khamaisi B., Oppenheim O., Desai R.A., Goodyear R.J., Richardson G.P., Chen C.S., Sprinzak D.
ISSN
1878-1551 (Electronic)
ISSN-L
1534-5807
Publication state
Published
Issued date
13/03/2017
Peer-reviewed
Oui
Volume
40
Number
5
Pages
505-511.e6
Language
english
Notes
Publication types: Journal Article
Publication Status: ppublish
Abstract
During development, cells undergo dramatic changes in their morphology. By affecting contact geometry, these morphological changes could influence cellular communication. However, it has remained unclear whether and how signaling depends on contact geometry. This question is particularly relevant for Notch signaling, which coordinates neighboring cell fates through direct cell-cell signaling. Using micropatterning with a receptor trans-endocytosis assay, we show that signaling between pairs of cells correlates with their contact area. This relationship extends across contact diameters ranging from micrometers to tens of micrometers. Mathematical modeling predicts that dependence of signaling on contact area can bias cellular differentiation in Notch-mediated lateral inhibition processes, such that smaller cells are more likely to differentiate into signal-producing cells. Consistent with this prediction, analysis of developing chick inner ear revealed that ligand-producing hair cell precursors have smaller apical footprints than non-hair cells. Together, these results highlight the influence of cell morphology on fate determination processes.

Keywords
Animals, Body Patterning, CHO Cells, Cell Communication, Chickens, Cricetinae, Cricetulus, Dogs, Endocytosis, Female, Humans, Madin Darby Canine Kidney Cells, Receptors, Notch/metabolism, Signal Transduction, Notch signaling, cell morphology, cell-cell contact, inner ear, lateral inhibition, live cell imaging
Pubmed
Web of science
Create date
21/03/2017 18:52
Last modification date
20/08/2019 17:26
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