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Inhibition of Gsk3β activity improves β-cell function in c-KitWv/+ male mice
Zhi-Chao Feng1, Lisa Donnelly, Jinming Li
1Children's Health Research Institute, University of Western Ontario, London, ON, Canada.
Abstract:
Previous studies have shown that the stem cell marker, c-Kit, is involved in glucose homeostasis. We recently reported that c-Kit(Wv/+) male mice displayed the onset of diabetes at 8 weeks of age; however, the mechanisms by which c-Kit regulates β-cell proliferation and function are unknown. The purpose of this study is to examine if c-Kit(Wv/+) mutation-induced β-cell dysfunction is associated with downregulation of the phospho-Akt/Gsk3β pathway in c-Kit(Wv/+) male mice. Histology and cell signaling were examined in C57BL/6J/Kit(Wv/+) (c-Kit(Wv/+)) and wild-type (c-Kit(+/+)) mice using immunofluorescence and western blotting approaches. The Gsk3β inhibitor, 1-azakenpaullone (1-AKP), was administered to c-Kit(Wv/+) and c-Kit(+/+) mice for 2 weeks, whereby alterations in glucose metabolism were examined and morphometric analyses were performed. A significant reduction in phosphorylated Akt was observed in the islets of c-Kit(Wv/+) mice (P<0.05) along with a decrease in phosphorylated Gsk3β (P<0.05), and cyclin D1 protein level (P<0.01) when compared with c-Kit(+/+) mice. However, c-Kit(Wv/+) mice that received 1-AKP treatment demonstrated normal fasting blood glucose with significantly improved glucose tolerance. 1-AKP-treated c-Kit(Wv/+) mice also showed increased β-catenin, cyclin D1 and Pdx-1 levels in islets, demonstrating that inhibition of Gsk3β activity led to increased β-cell proliferation and insulin secretion. These data suggest that c-Kit(Wv/+) male mice had alterations in the Akt/Gsk3β signaling pathway, which lead to β-cell dysfunction by decreasing Pdx-1 and cyclin D1 levels. Inhibition of Gsk3β could prevent the onset of diabetes by improving glucose tolerance and β-cell function.
Insights
The stem cell marker c-Kit is crucial for glucose homeostasis. Inhibiting Gsk3β in c-Kit mutant mice improved beta-cell function and prevented diabetes onset.
Area of Science:
- Endocrinology and Metabolism
- Cell Signaling Pathways
- Diabetes Research
Background:
- The stem cell marker c-Kit plays a role in glucose homeostasis.
- c-Kit(Wv/+) male mice develop diabetes by 8 weeks of age.
- Mechanisms of c-Kit's regulation of beta-cell proliferation and function are unclear.
Purpose of the Study:
- To investigate if c-Kit(Wv/+) mutation-induced beta-cell dysfunction is linked to the downregulation of the phospho-Akt/Gsk3β pathway.
- To examine the impact of Gsk3β inhibition on glucose metabolism and beta-cell function in c-Kit(Wv/+) mice.
Main Methods:
- Utilized immunofluorescence and western blotting to analyze histology and cell signaling in c-Kit(Wv/+) and wild-type mice.
- Administered the Gsk3β inhibitor 1-azakenpaullone (1-AKP) to mice for 2 weeks.
- Assessed glucose metabolism and performed morphometric analyses.
Main Results:
- c-Kit(Wv/+) mice showed reduced phosphorylated Akt, phosphorylated Gsk3β, and cyclin D1 levels compared to controls.
- 1-AKP treatment normalized fasting blood glucose and improved glucose tolerance in c-Kit(Wv/+) mice.
- 1-AKP treatment increased beta-catenin, cyclin D1, and Pdx-1 levels in islets, indicating enhanced beta-cell proliferation and insulin secretion.
Conclusions:
- c-Kit(Wv/+) male mice exhibit Akt/Gsk3β pathway alterations leading to beta-cell dysfunction.
- Decreased Pdx-1 and cyclin D1 levels contribute to beta-cell dysfunction in c-Kit(Wv/+) mice.
- Gsk3β inhibition offers a potential therapeutic strategy to prevent diabetes by improving beta-cell function and glucose tolerance.
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