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Am J Physiol Regul Integr Comp Physiol (February 4, 2009). doi:10.1152/ajpregu.90783.2008
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Submitted on September 18, 2008
Revised on January 13, 2009
Accepted on January 28, 2009

Glucagon Induces the Gene Expression of Aquaporin-8 but not that of Aquaporin-9 Water Channels in the Rat Hepatocyte

Leandro R. Soria, Sergio Alejandro Gradilone, Maria Cecilia Larocca1, and Raul Alberto Marinelli2*

1 Universidad Nacional de Rosario
2 Instituto de Fisiologia Experimental. IFISE-CONICET

* To whom correspondence should be addressed. E-mail: rmarinel{at}unr.edu.ar.

Glucagon stimulates the vesicle trafficking of aquaporin-8 (AQP8) water channels to the rat hepatocyte canalicular membranes, a process thought to be relevant to glucagon-induced bile secretion. In this study we investigated whether glucagon is able to modulate the gene expression of hepatocyte AQP8. Glucagon was administered to rats at 0.2 mg/100g body wt ip in 2, 3, or 6 equally spaced doses for 8, 16, and 36 h, respectively. Immunoblotting analysis showed that hepatic 34 kDa AQP8 was significantly increased by 79 and 107% at 16 and 36 h, respectively. Hepatic AQP9 protein expression remained unaltered. AQP8 mRNA expression, assessed by real time PCR, was not modified over time suggesting a posttranscriptional mechanism of AQP8 protein increase. Glucagon effects on AQP8 were directly studied in primary cultured rat hepatocytes. Immunoblotting and confocal immunofluorescence microscopy confirmed the specific glucagon-induced AQP8 upregulation. The RNA polymerase II inhibitor actinomycin D was unable to prevent glucagon effect, providing additional support to the nontranscriptional upregulation of AQP8. Cycloheximide also showed no effect suggesting that glucagon-induced AQP8 expression does not depend on protein synthesis but rather on protein degradation. Inhibitory experiments suggest that a reduced calpain-mediated AQP8 proteolysis could be involved. The action of glucagon on hepatocyte AQP8 was mimicked by dibutyryl cAMP and suppressed by protein kinase A (PKA) or phosphatidylinositol-3-kinase (PI3K) inhibitors. In conclusion, our data suggest that glucagon induces the gene expression of rat hepatocyte AQP8 by reducing its degradation, a process that involves cAMP-PKA and PI3K signal pathways.







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