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A Method for Mouse Pancreatic Islet Isolation and Intracellular cAMP Determination
Published on: June 25, 2014
Pharmacological interventions that directly stimulate or modulate insulin secretion from pancreatic beta-cell:
Anne Farret1, Laura Lugo-Garcia, Florence Galtier
1CNRS UMR 5160, Center for Pharmacology and Health Biotechnology, Montpellier, France.
Abstract:
Blood glucose concentration is controlled by a number of hormone and neurotransmitter signals, either increasing or reducing glucose levels in the case of hypoglycemia or hyperglycemia, respectively. The pancreatic beta-cell responds to an increase in circulating glucose levels by a cascade of metabolic and electrophysiological events leading to the secretion of insulin. Type 2 diabetes is a metabolic disorder characterized by chronic hyperglycemia; the progressive pancreatic beta-cell dysfunction, with altered insulin production and secretion, is a major pathophysiological determinant of the disease together with the resistance of insulin-sensitive tissues to the action of the hormone. Hence, drugs which stimulate or enhance insulin secretion will reduce plasma glucose concentrations; this lowering of hyperglycemia will, in turn, reduce the occurrence of long-term complications. K(ATP) channels play a critical role in insulin secretion and can be considered as transducers of glucose-induced metabolic changes into biophysical events leading to the exocytosis of insulin granules. All currently marketed insulin secretagogues, sulfonylureas and glinides, target the beta-cell K(ATP) channels and reduce their opening probability. They induce insulin release regardless of the plasma glucose concentration, thus favoring the occurrence of hypoglycemia in the fasting state. Despite the intensive use of current drugs, many patients suffering from type 2 diabetes still exhibit poor glycemic control, others fail to respond to the treatment, and some develop serious complications. Therefore, there is a real need for innovative compounds, either enhancing insulin secretion from the pancreas or improving insulin action on the hormone-sensitive tissues. Here, we overview the existing and novel approaches targeting the beta-cell to enhance the release of insulin, with special emphasis on new ways of amplifying insulin secretion in a glucose-dependent manner.
Insights
New diabetes drugs aim to improve insulin secretion in a glucose-dependent manner, addressing limitations of current treatments and reducing hypoglycemia risk. This approach targets pancreatic beta-cells for better glycemic control.
Area of Science:
- Endocrinology
- Metabolic Disorders
- Pharmacology
Background:
- Type 2 diabetes is marked by chronic hyperglycemia and pancreatic beta-cell dysfunction.
- Insulin resistance in target tissues exacerbates hyperglycemia.
- Current drugs targeting K(ATP) channels for insulin secretion carry risks like hypoglycemia.
Purpose of the Study:
- To review existing and novel therapeutic strategies for enhancing insulin secretion.
- To focus on innovative approaches for glucose-dependent insulin release.
- To address the unmet need for improved glycemic control in type 2 diabetes.
Main Methods:
- Overview of current and emerging drug targets for insulin secretion.
- Emphasis on modulators of pancreatic beta-cell function.
- Discussion of glucose-dependent mechanisms for insulin release.
Main Results:
- Existing insulin secretagogues (sulfonylureas, glinides) target K(ATP) channels but lack glucose-dependency.
- Many type 2 diabetes patients show poor glycemic control or treatment failure with current therapies.
- A need exists for novel compounds that enhance insulin secretion or action.
Conclusions:
- Targeting pancreatic beta-cells offers a promising avenue for type 2 diabetes treatment.
- Developing glucose-dependent insulin secretagogues is crucial to minimize hypoglycemia.
- Innovative approaches are needed to improve therapeutic outcomes for diabetic patients.
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