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Updated: Jun 17, 2026

A Method for Mouse Pancreatic Islet Isolation and Intracellular cAMP Determination
Published on: June 25, 2014
Acute insulin signaling in pancreatic beta-cells is mediated by multiple Raf-1 dependent pathways
Emilyn U Alejandro1, Tatyana B Kalynyak, Farnaz Taghizadeh
1Department of Cellular and Physiological Sciences, University of British Columbia, 5358 Life Sciences Building, 2350 Health Sciences Mall, Vancouver, British Columbia, Canada.
Abstract:
Insulin enhances the proliferation and survival of pancreatic beta-cells, but its mechanisms remain unclear. We hypothesized that Raf-1, a kinase upstream of both ERK and Bad, might be a critical target of insulin in beta-cells. To test this hypothesis, we treated human and mouse islets as well as MIN6 beta-cells with multiple insulin concentrations and examined putative downstream targets using immunoblotting, immunoprecipitation, quantitative fluorescent imaging, and cell death assays. Low doses of insulin rapidly activated Raf-1 by dephosphorylating serine 259 and phosphorylating serine 338 in human islets, mouse islets, and MIN6 cells. The phosphorylation of ERK by insulin was eliminated by exposure to a Raf inhibitor (GW5074) or transfection with a dominant-negative Raf-1 mutant. Insulin also enhanced the interaction between mitochondrial Raf-1 and Bcl-2 agonist of cell death (Bad), promoting Bad inactivation via its phosphorylation on serine 112. Insulin-stimulated ERK phosphorylation was abrogated by calcium chelation, calcineurin and calmodulin-dependent protein kinase II inhibitors, and Ned-19, a nicotinic acid adenine dinucleotide phosphate receptor (NAADPR) antagonist. Blocking Raf-1 and Ca(2+) signaling resulted in nonadditive beta-cell death. Autocrine insulin signaling partly accounted for the effects of glucose on ERK phosphorylation. Our results demonstrate that Raf-1 is a critical target of insulin in primary beta-cells. Activation of Raf-1 leads to both an ERK-dependent pathway that involves nicotinic acid adenine dinucleotide phosphate-sensitive Ca(2+) stores and Ca(2+)-dependent phosphorylation events, and an ERK-independent pathway that involves Bad inactivation at the mitochondria. Together our findings identify a novel insulin signaling pathway in beta-cells and shed light on insulin's antiapoptotic and mitogenic mechanisms.
Insights
Insulin promotes pancreatic beta-cell survival and proliferation by activating Raf-1 kinase. This activation involves both ERK-dependent and ERK-independent pathways, including Bad inactivation, crucial for beta-cell health.
Area of Science:
- Cell Biology
- Endocrinology
- Molecular Biology
Background:
- Insulin is vital for pancreatic beta-cell proliferation and survival.
- The precise molecular mechanisms underlying insulin's effects on beta-cells are not fully understood.
Purpose of the Study:
- To investigate the role of Raf-1 kinase as a critical mediator of insulin signaling in pancreatic beta-cells.
- To elucidate the downstream pathways affected by insulin-induced Raf-1 activation.
Main Methods:
- Treatment of human and mouse islets and MIN6 beta-cells with varying insulin concentrations.
- Analysis of Raf-1 activation, ERK phosphorylation, and Bad interaction using immunoblotting, immunoprecipitation, and fluorescent imaging.
- Assessment of cell death assays and the impact of specific inhibitors and genetic manipulations.
Main Results:
- Low insulin doses rapidly activated Raf-1 in beta-cells via specific dephosphorylation and phosphorylation events.
- Insulin-stimulated ERK phosphorylation was dependent on Raf-1 activity and calcium signaling.
- Insulin promoted mitochondrial Raf-1 interaction with Bad, leading to Bad inactivation and reduced beta-cell death.
Conclusions:
- Raf-1 is a key molecular target of insulin in pancreatic beta-cells.
- Insulin activates Raf-1, initiating both ERK-dependent (calcium-mediated) and ERK-independent (Bad inactivation) pro-survival pathways.
- These findings reveal novel mechanisms of insulin action, contributing to beta-cell survival and proliferation.
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