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Published on: December 31, 2013
TRPV4 regulates insulin mRNA expression and INS-1E cell death via ERK1/2 and NO-dependent mechanisms
M Billert1, M Skrzypski1, M Sassek1
1Department of Animal Physiology and Biochemistry, Poznań University of Life Sciences, 60-637 Poznań, Poland.
Abstract:
TRPV4 is a Ca2+-permeable, nonselective cation channel. Recently, TRPV4 was implicated in controlling peripheral insulin sensitivity, insulin secretion and apoptosis of pancreatic beta cells. Here, we characterize the role and potential mechanisms of TRPV4 in regulating insulin mRNA expression and cell death in insulin producing INS-1E cells and rat pancreatic islets. TRPV4 protein production was downregulated by siRNA. Intracellular calcium level was measured using Fluo-3 AM. Gene expression was studied by real-time PCR. Phosphorylation of extracellular signal-regulated kinase (ERK1 and ERK2) was detected by Western blot. Nitric oxide (NO) production was assessed by chemiluminescent reaction. Reactive oxygen species (ROS) level was analysed using a fluorogenic dye (DCFDA). Cell death was evaluated by determination of cytoplasmic histone-associated DNA fragments. Downregulation of TRPV4 neither affected insulin mRNA expression nor INS-1E cell growth. By contrast, pharmacological TRPV4 activation by 100nmol/l GSK1016790A increased Ca2+ levels in INS-1E cells and enhanced insulin mRNA expression after 1 and 3h, whereas a suppression of insulin mRNA expression was detected after 24h incubation. GSK1016790A increased ERK1/2 phosphorylation and NO production but not ROS production. Pharmacological blockade of ERK1/2 attenuated GSK1016790A-induced insulin mRNA expression. Inhibition of NO synthesis by l-NAME failed to affect insulin mRNA expression in GSK1016790A treated INS-1E cells. Furthermore, inhibition of NO production attenuated GSK1016790A-induced INS-1E cell death. In pancreatic islets, 100nmol/l GSK1016790A increased insulin mRNA levels after 3h without inducing cytotoxicity after 24h. In conclusion, TRPV4 differently regulates insulin mRNA expression in INS-1E cells via ERK1/2 and NO-dependent mechanisms.
Insights
Transient Receptor Potential Vanilloid 4 (TRPV4) channels regulate insulin mRNA expression in pancreatic beta cells. Activation enhances insulin mRNA via ERK1/2 and nitric oxide pathways, while also protecting against cell death.
Area of Science:
- Cell Biology
- Endocrinology
- Molecular Biology
Background:
- Transient Receptor Potential Vanilloid 4 (TRPV4) channels are implicated in insulin sensitivity, secretion, and pancreatic beta-cell apoptosis.
- Understanding TRPV4's role is crucial for metabolic research.
Purpose of the Study:
- To investigate the function and mechanisms of TRPV4 in regulating insulin mRNA expression and cell death in INS-1E cells and pancreatic islets.
- To elucidate the signaling pathways involved in TRPV4-mediated effects.
Main Methods:
- TRPV4 downregulation using siRNA.
- Measurement of intracellular calcium levels (Fluo-3 AM).
- Real-time PCR for gene expression analysis.
- Western blot for ERK1/2 phosphorylation.
- Assessment of nitric oxide (NO) and reactive oxygen species (ROS) production.
- Evaluation of cell death via DNA fragmentation.
Main Results:
- TRPV4 downregulation did not affect insulin mRNA or cell growth.
- TRPV4 activation by GSK1016790A increased intracellular calcium and transiently enhanced insulin mRNA expression in INS-1E cells.
- GSK1016790A upregulated ERK1/2 phosphorylation and NO production, but not ROS.
- ERK1/2 blockade attenuated the insulin mRNA response; NO inhibition did not affect mRNA but reduced cell death.
- In pancreatic islets, GSK1016790A increased insulin mRNA without cytotoxicity.
Conclusions:
- TRPV4 differentially regulates insulin mRNA expression in INS-1E cells through ERK1/2 and NO-dependent pathways.
- TRPV4 activation plays a protective role against cell death in a NO-dependent manner.
- TRPV4 modulation shows potential in regulating pancreatic beta-cell function.
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