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Published on: March 27, 2020
E-cadherin mediates contact inhibition of proliferation through Hippo signaling-pathway components
Nam-Gyun Kim1, Eunjin Koh, Xiao Chen
1Department of Cell Biology, University of Virginia Health Sciences Center, Charlottesville, VA 22908, USA.
Abstract:
Contact inhibition of cell growth is essential for embryonic development and maintenance of tissue architecture in adult organisms, and the growth of tumors is characterized by a loss of contact inhibition of proliferation. The recently identified Hippo signaling pathway has been implicated in contact inhibition of proliferation as well as organ size control. The modulation of the phosphorylation and nuclear localization of Yes-associated protein (YAP) by the highly conserved kinase cascade of the Hippo signaling pathway has been intensively studied. However, cell-surface receptors regulating the Hippo signaling pathway in mammals are not well understood. In this study, we show that Hippo signaling pathway components are required for E-cadherin-dependent contact inhibition of proliferation. Knockdown of the Hippo signaling components or overexpression of YAP inhibits the decrease in cell proliferation caused by E-cadherin homophilic binding at the cell surface, independent of other cell-cell interactions. We also demonstrate that the E-cadherin/catenin complex functions as an upstream regulator of the Hippo signaling pathway in mammalian cells. Expression of E-cadherin in MDA-MB-231 cells restores the density-dependent regulation of YAP nuclear exclusion. Knockdown of β-catenin in densely cultured MCF10A cells, which mainly depletes E-cadherin-bound β-catenin, induces a decrease in the phosphorylation of S127 residue of YAP and its nuclear accumulation. Moreover, E-cadherin homophilic binding independent of other cell interactions is sufficient to control the subcellular localization of YAP. Therefore, Our results indicate that, in addition to its role in cell-cell adhesion, E-cadherin-mediated cell-cell contact directly regulates the Hippo signaling pathway to control cell proliferation.
Insights
E-cadherin-mediated cell contact directly regulates the Hippo signaling pathway. This interaction controls cell proliferation by influencing Yes-associated protein (YAP) localization, essential for tissue growth and tumor suppression.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Contact inhibition of cell growth is crucial for development and tissue homeostasis.
- Loss of contact inhibition is a hallmark of tumor progression.
- The Hippo signaling pathway regulates cell proliferation and organ size, but upstream regulators are not fully understood.
Purpose of the Study:
- To investigate the role of cell-surface receptors in regulating the Hippo signaling pathway.
- To elucidate the mechanism by which E-cadherin influences cell proliferation.
- To determine if E-cadherin-mediated cell-cell contact regulates the Hippo pathway.
Main Methods:
- Knockdown of Hippo signaling components and YAP overexpression.
- Assessment of cell proliferation following E-cadherin homophilic binding.
- Analysis of the E-cadherin/catenin complex as an upstream regulator.
- Expression of E-cadherin in cancer cells and knockdown of β-catenin in normal cells.
- Evaluation of YAP subcellular localization (nuclear exclusion/accumulation).
Main Results:
- Hippo signaling components are necessary for E-cadherin-dependent contact inhibition.
- E-cadherin homophilic binding regulates cell proliferation independently of other cell interactions.
- The E-cadherin/catenin complex acts upstream of the Hippo signaling pathway.
- E-cadherin expression restores density-dependent YAP regulation, while β-catenin knockdown disrupts YAP phosphorylation and localization.
- E-cadherin-mediated contact is sufficient to control YAP localization.
Conclusions:
- E-cadherin-mediated cell-cell contact directly regulates the Hippo signaling pathway.
- This regulation of the Hippo pathway by E-cadherin controls cell proliferation.
- E-cadherin plays a dual role in cell-cell adhesion and direct regulation of the Hippo pathway for proliferation control.
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