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Published on: November 16, 2011
Glucokinase Inactivation Paradoxically Ameliorates Glucose Intolerance by Increasing β-Cell Mass in db/db Mice
Kazuno Omori1, Akinobu Nakamura2, Hideaki Miyoshi3
1Department of Rheumatology, Endocrinology, and Nephrology, Faculty of Medicine and Graduate School of Medicine, Hokkaido University, Sapporo, Japan.
Abstract:
Efficacy of glucokinase activation on glycemic control is limited to a short-term period. One reason might be related to excess glucose signaling by glucokinase activation toward β-cells. In this study, we investigated the effect of glucokinase haploinsufficiency on glucose tolerance as well as β-cell function and mass using a mouse model of type 2 diabetes. Our results showed that in db/db mice with glucokinase haploinsufficiency, glucose tolerance was ameliorated by augmented insulin secretion associated with the increase in β-cell mass when compared with db/db mice. Gene expression profiling and immunohistochemical and metabolomic analyses revealed that glucokinase haploinsufficiency in the islets of db/db mice was associated with lower expression of stress-related genes, greater expression of transcription factors involved in the maintenance and maturation of β-cell function, less mitochondrial damage, and a superior metabolic pattern. These effects of glucokinase haploinsufficiency could preserve β-cell mass under diabetic conditions. These findings verified our hypothesis that optimizing excess glucose signaling in β-cells by inhibiting glucokinase could prevent β-cell insufficiency, leading to improving glucose tolerance in diabetes status by preserving β-cell mass. Therefore, glucokinase inactivation in β-cells, paradoxically, could be a potential strategy for the treatment of type 2 diabetes.
Insights
Glucokinase haploinsufficiency improved glucose tolerance in type 2 diabetes mice by preserving beta-cell mass and function. This suggests inhibiting glucokinase may be a novel treatment strategy for diabetes.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Molecular Biology
Background:
- Glucokinase activation offers limited short-term glycemic control in diabetes.
- Excess glucose signaling via glucokinase may impair beta-cell function.
Purpose of the Study:
- To investigate glucokinase haploinsufficiency effects on glucose tolerance, beta-cell function, and mass in a type 2 diabetes mouse model.
- To explore mechanisms underlying glucokinase's role in beta-cell preservation.
Main Methods:
- Utilized a mouse model of type 2 diabetes (db/db mice).
- Assessed glucose tolerance, insulin secretion, and beta-cell mass.
- Performed gene expression profiling, immunohistochemistry, and metabolomic analyses.
Main Results:
- Glucokinase haploinsufficiency ameliorated glucose tolerance in db/db mice.
- Observed augmented insulin secretion and increased beta-cell mass.
- Found reduced expression of stress genes, enhanced beta-cell maintenance factors, and less mitochondrial damage.
Conclusions:
- Glucokinase haploinsufficiency preserves beta-cell mass and function in diabetic conditions.
- Optimizing glucose signaling by inhibiting glucokinase may prevent beta-cell insufficiency.
- Glucokinase inactivation presents a potential therapeutic strategy for type 2 diabetes.
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