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Published on: May 17, 2013
Tumor suppressor gene adenomatous polyposis coli downregulates intestinal transport
Rexhep Rexhepaj1, Anand Rotte, Shuchen Gu
1Department of Physiology, University of Tübingen, Gmelinstr. 5, 72076, Tübingen, Germany.
Abstract:
Loss of function mutations of the tumor suppressor gene adenomatous polyposis coli (APC) underly the familial adenomatous polyposis. Mice carrying an inactivating mutation in the apc gene (apc (Min/+)) similarly develop intestinal polyposis. APC is effective at least in part by degrading β-catenin and lack of APC leads to markedly enhanced cellular β-catenin levels. β-Catenin has most recently been shown to upregulate the Na+/K+ ATPase. The present study, thus, explored the possibility that APC could influence intestinal transport. The abundance and localization of β-catenin were determined utilizing Western blotting and confocal microscopy, the activity of the electrogenic glucose carrier (SGLT1) was estimated from the glucose-induced current in jejunal segments utilizing Ussing chamber experiments and the Na+/H+ exchanger (NHE3) activity from Na+ -dependent re-alkalinization of cytosolic pH (ΔpH(i)) following an ammonium pulse employing BCECF fluorescence. As a result, β-catenin abundance in intestinal tissue was significantly higher in apc (Min/+) mice than in wild-type mice (apc (+/+)). The β-catenin protein was localized in the basolateral membrane. Both, the glucose-induced current and ΔpH(i) were significantly higher in apc (Min/+) mice than in apc (+/+) mice. In conclusion, intestinal electrogenic transport of glucose and intestinal Na+/H+ exchanger activity are both significantly enhanced in apc (Min/+) mice, pointing to a role of APC in the regulation of epithelial transport.
Insights
Loss of function mutations in the adenomatous polyposis coli (APC) gene increase intestinal β-catenin levels, enhancing epithelial transport of glucose and sodium. This suggests APC regulates intestinal transport mechanisms.
Area of Science:
- Gastroenterology
- Molecular Biology
- Cell Biology
Background:
- Loss-of-function mutations in the adenomatous polyposis coli (APC) gene cause familial adenomatous polyposis.
- APC protein regulates β-catenin degradation; its absence leads to elevated β-catenin levels.
- β-Catenin has been shown to upregulate the Na+/K+ ATPase, suggesting a link to intestinal transport.
Purpose of the Study:
- To investigate the role of APC in regulating intestinal epithelial transport.
- To determine if APC influences the activity of glucose and sodium transporters in the intestine.
Main Methods:
- Western blotting and confocal microscopy to assess β-catenin abundance and localization.
- Ussing chamber experiments to measure glucose-induced current, reflecting SGLT1 activity.
- BCECF fluorescence to determine Na+/H+ exchanger (NHE3) activity via cytosolic pH changes.
Main Results:
- Mice with inactivating APC mutations (apcMin/+) exhibited significantly higher β-catenin abundance in intestinal tissue compared to wild-type mice.
- β-catenin protein was localized to the basolateral membrane in apcMin/+ mice.
- Both glucose-induced current (SGLT1 activity) and Na+/H+ exchanger activity were significantly elevated in apcMin/+ mice.
Conclusions:
- Intestinal electrogenic glucose transport and Na+/H+ exchanger activity are significantly enhanced in mice with APC mutations.
- These findings indicate a crucial role for APC in the regulation of intestinal epithelial transport processes.
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