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Leprdb Mouse Model of Type 2 Diabetes: Pancreatic Islet Isolation and Live-cell 2-Photon Imaging Of Intact Islets
Published on: May 11, 2015
The diabetic β-cell: hyperstimulated vs. hyperexcited.
1Department of Cell Biology and Physiology and Center for Investigation of Membrane Excitability Diseases, Washington University School of Medicine, St. Louis, MO 63110, USA. cnichols@wustl.edu
High glucose initially stimulates pancreatic beta cells but can lead to dysfunction and insulin deficiency in diabetes. Chronic beta-cell hyperexcitability causes reversible insulin loss, while inexcitability leads to diabetes and cell death.
Area of Science:
- Endocrinology
- Cell Biology
- Diabetes Pathophysiology
Background:
- Hyperglycemia impacts pancreatic beta cells, initially promoting insulin secretion but eventually causing glucotoxicity, beta-cell dysfunction, and insulin deficiency, key aspects of diabetes.
- High glucose levels stimulate glycolysis and oxidative phosphorylation, increasing beta-cell membrane excitability via K(ATP) channel closure, leading to elevated intracellular calcium and insulin secretion.
Purpose of the Study:
- To investigate the role of chronic beta-cell hyperexcitability and inexcitability in the pathophysiology of diabetes.
- To elucidate the mechanisms underlying glucose-induced beta-cell dysfunction and insulin deficiency.
Main Methods:
- Studies involving isolated islets and in vivo models to assess beta-cell responses to altered glucose levels and K(ATP) channel activity.
- Pharmacological and genetic manipulation of the glucose-K(ATP)-channel link to evaluate its impact on beta-cell function and mass.
Main Results:
- In isolated islets, chronic hyperexcitability due to high glucose leads to a reversible decrease in insulin content.
- In vivo, chronic beta-cell hyperexcitability does not cause beta-cell death or loss of insulin content.
- Conversely, chronic beta-cell inexcitability in vivo results in systemic diabetes and subsequent beta-cell death, despite low intracellular calcium levels.
Conclusions:
- The link between glucose levels, K(ATP) channel activity, and beta-cell function is crucial for maintaining insulin homeostasis.
- Chronic beta-cell hyperexcitability has distinct effects in vitro versus in vivo, with in vivo inexcitability being a direct driver of diabetes and beta-cell loss.
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