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Study of In Vivo Glucose Metabolism in High-fat Diet-fed Mice Using Oral Glucose Tolerance Test OGTT and Insulin Tolerance Test ITT
Published on: January 7, 2018
Loss of FFA2 and FFA3 increases insulin secretion and improves glucose tolerance in type 2 diabetes
Cong Tang1, Kashan Ahmed1, Andreas Gille2
1Max Planck Institute for Heart and Lung Research, Department of Pharmacology, Bad Nauheim, Germany.
Abstract:
Type 2 diabetes is a major health problem worldwide, and one of its key features is the inability of elevated glucose to stimulate the release of sufficient amounts of insulin from pancreatic beta cells to maintain normal blood glucose levels. New therapeutic strategies to improve beta cell function are therefore believed to be beneficial. Here we demonstrate that the short-chain fatty acid receptors FFA2 (encoded by FFAR2) and FFA3 (encoded by FFAR3) are expressed in mouse and human pancreatic beta cells and mediate an inhibition of insulin secretion by coupling to Gi-type G proteins. We also provide evidence that mice with dietary-induced obesity and type 2 diabetes, as compared to non-obese control mice, have increased local formation by pancreatic islets of acetate, an endogenous agonist of FFA2 and FFA3, as well as increased systemic levels. This elevation may contribute to the insufficient capacity of beta cells to respond to hyperglycemia in obese states. Indeed, we found that genetic deletion of both receptors, either on the whole-body level or specifically in pancreatic beta cells, leads to greater insulin secretion and a profound improvement of glucose tolerance when mice are on a high-fat diet compared to controls. On the other hand, deletion of Ffar2 and Ffar3 in intestinal cells did not alter glucose tolerance in diabetic animals, suggesting these receptors act in a cell-autonomous manner in beta cells to regulate insulin secretion. In summary, under diabetic conditions elevated acetate acts on FFA2 and FFA3 to inhibit proper glucose-stimulated insulin secretion, and we expect antagonists of FFA2 and FFA3 to improve insulin secretion in type 2 diabetes.
Insights
Elevated acetate in type 2 diabetes inhibits insulin release by activating FFA2 and FFA3 receptors on pancreatic beta cells. Blocking these receptors may improve insulin secretion and glucose control.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Molecular Biology
Background:
- Type 2 diabetes is characterized by impaired insulin secretion from pancreatic beta cells.
- Identifying novel therapeutic targets to enhance beta cell function is crucial for managing diabetes.
Purpose of the Study:
- To investigate the role of short-chain fatty acid receptors FFA2 and FFA3 in pancreatic beta cell function and insulin secretion.
- To determine the impact of elevated acetate levels in obesity and type 2 diabetes on beta cell responsiveness.
Main Methods:
- Expression analysis of FFA2 and FFA3 receptors in mouse and human pancreatic beta cells.
- Assessment of insulin secretion in response to glucose and acetate.
- Genetic deletion of FFAR2 and FFAR3 in mice (whole-body and beta cell-specific) and evaluation of glucose tolerance on a high-fat diet.
Main Results:
- FFA2 and FFA3 receptors are expressed in pancreatic beta cells and inhibit insulin secretion via Gi-protein coupling.
- Obese, diabetic mice exhibit increased islet acetate production and systemic acetate levels.
- Genetic deletion of FFAR2 and FFAR3 in beta cells improves insulin secretion and glucose tolerance in diabetic mice.
Conclusions:
- Elevated acetate in type 2 diabetes inhibits glucose-stimulated insulin secretion by activating FFA2 and FFA3 in beta cells.
- Targeting FFA2 and FFA3 with antagonists presents a potential therapeutic strategy for type 2 diabetes.
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