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A cAMP and CREB-mediated feed-forward mechanism regulates GSK3β in polycystic kidney disease
Vijayakumar R Kakade1, Shixin Tao1, Madhumitha Rajagopal1
1The Kidney Institute, University of Kansas Medical Center, Kansas City, KS 66160, USA.
Abstract:
Glycogen synthase kinase 3β (GSK3β), a serine/threonine protein kinase, is commonly known to be regulated at the level of its activity. However, in some diseases including polycystic kidney disease (PKD), GSK3β expression is increased and plays a pathophysiological role. The current studies aimed to determine the mechanism for the increased GSK3β expression in PKD and its significance to disease progression. In mouse models of PKD, increases in renal GSK3β corresponded with increases in renal cAMP levels and disease progression. In vivo and in vitro studies revealed that GSK3β is a cAMP-responsive gene, and elevated cAMP levels, as seen in PKD, can increase GSK3β expression. In normal mice, vasopressin signaling induced by water deprivation increased GSK3β expression, which decreased following rehydration. Examination of the GSK3β promoter revealed five potential binding sites for the transcription factor, cAMP response element binding protein (CREB). CREB was found to bind to GSK3β promoter and essential for cAMP-mediated regulation of GSK3β. Importantly, this regulation was demonstrated to be part of a feed-forward loop in which cAMP through CREB regulates GSK3β expression, and GSK3β in turn positively regulates cAMP generation. GSK3β or CREB inhibition reduced transepithelial fluid secretion and cyst expansion in vitro Thus, disruption at any point of this destructive cycle may be therapeutically useful to reduce cyst expansion and preserve renal function in PKD.
Insights
Increased Glycogen synthase kinase 3β (GSK3β) expression in polycystic kidney disease (PKD) is driven by elevated cAMP. This creates a destructive cycle that promotes cyst expansion, but inhibiting GSK3β or CREB may offer therapeutic benefits.
Area of Science:
- Molecular Biology
- Cell Biology
- Renal Physiology
Background:
- Glycogen synthase kinase 3β (GSK3β) activity is typically regulated, but its expression increases in diseases like polycystic kidney disease (PKD).
- Elevated GSK3β expression contributes to the pathophysiology of PKD.
Purpose of the Study:
- To elucidate the mechanism behind increased GSK3β expression in PKD.
- To investigate the role of this mechanism in PKD progression.
Main Methods:
- Utilized mouse models of PKD and in vitro cell studies.
- Analyzed GSK3β promoter activity and transcription factor binding (CREB).
- Measured cAMP levels and GSK3β expression under various conditions (e.g., water deprivation, rehydration).
Main Results:
- Renal GSK3β levels correlated with cAMP levels and PKD severity in mouse models.
- GSK3β was identified as a cAMP-responsive gene, with elevated cAMP increasing its expression.
- CREB binds to the GSK3β promoter, mediating cAMP-induced regulation.
- A positive feedback loop was discovered where cAMP/CREB upregulates GSK3β, which in turn enhances cAMP generation.
- Inhibition of GSK3β or CREB reduced cyst expansion and fluid secretion in vitro.
Conclusions:
- Elevated cAMP in PKD drives GSK3β expression via CREB, establishing a detrimental feed-forward loop.
- This cycle promotes cystogenesis and renal dysfunction in PKD.
- Targeting GSK3β or CREB presents a potential therapeutic strategy to mitigate cyst expansion and preserve kidney function in PKD.
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