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Published on: November 21, 2015
TSC2/mTORC1 signaling controls Paneth and goblet cell differentiation in the intestinal epithelium
Y Zhou1, P Rychahou2, Q Wang2
1Markey Cancer Center, The University of Kentucky, Lexington, KY, USA.
Abstract:
The intestinal mucosa undergoes a continual process of proliferation, differentiation and apoptosis, which is regulated by multiple signaling pathways. Notch signaling is critical for the control of intestinal stem cell maintenance and differentiation. However, the precise mechanisms involved in the regulation of differentiation are not fully understood. Previously, we have shown that tuberous sclerosis 2 (TSC2) positively regulates the expression of the goblet cell differentiation marker, MUC2, in intestinal cells. Using transgenic mice constitutively expressing a dominant negative TSC2 allele, we observed that TSC2 inactivation increased mTORC1 and Notch activities, and altered differentiation throughout the intestinal epithelium, with a marked decrease in the goblet and Paneth cell lineages. Conversely, treatment of mice with either Notch inhibitor dibenzazepine (DBZ) or mTORC1 inhibitor rapamycin significantly attenuated the reduction of goblet and Paneth cells. Accordingly, knockdown of TSC2 activated, whereas knockdown of mTOR or treatment with rapamycin decreased, the activity of Notch signaling in the intestinal cell line LS174T. Importantly, our findings demonstrate that TSC2/mTORC1 signaling contributes to the maintenance of intestinal epithelium homeostasis by regulating Notch activity.
Insights
Tuberous sclerosis 2 (TSC2) protein regulates intestinal cell differentiation. Its inactivation disrupts goblet and Paneth cell development by affecting mTORC1 and Notch signaling pathways, impacting gut homeostasis.
Area of Science:
- Gastroenterology
- Cell Biology
- Molecular Biology
Background:
- Intestinal mucosa homeostasis relies on regulated cell proliferation, differentiation, and apoptosis.
- Notch signaling is crucial for intestinal stem cell maintenance and differentiation.
- Tuberous sclerosis 2 (TSC2) protein positively regulates MUC2 expression, a goblet cell differentiation marker.
Purpose of the Study:
- To elucidate the role of TSC2 in intestinal epithelial differentiation.
- To investigate the interplay between TSC2, mTORC1, and Notch signaling in regulating intestinal cell fate.
Main Methods:
- Utilized transgenic mice expressing a dominant-negative TSC2 allele.
- Administered Notch inhibitor dibenzazepine (DBZ) and mTORC1 inhibitor rapamycin.
- Employed knockdown strategies for TSC2 and mTOR in the LS174T intestinal cell line.
Main Results:
- TSC2 inactivation in mice increased mTORC1 and Notch activity, decreasing goblet and Paneth cell lineages.
- DBZ and rapamycin treatments attenuated the differentiation defects caused by TSC2 inactivation.
- TSC2 knockdown activated Notch signaling, while mTOR knockdown or rapamycin decreased it in LS174T cells.
Conclusions:
- TSC2/mTORC1 signaling pathway is essential for maintaining intestinal epithelium homeostasis.
- This pathway regulates intestinal cell differentiation by modulating Notch activity.
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