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Gene expression analysis on the liver of cholestyramine-treated type 2 diabetic model mice
Kenji Matsumoto1, Shin-ichiro Yokoyama
1Department of Applied Microbiology, Gifu Prefectural Research Institute for Bioengineering, 3481-2 Kamihachiya, Hachiya, Minokamo, Gifu 505-0004, Japan. matsumotokm@gmail.com
Abstract:
Recent experimental and clinical studies have indicated that bile acid-binding agents are effective not only for treating hypercholesterolemia, but also for type 2 diabetes. To investigate the molecular mechanism underlying the effect of cholestyramine, a bile acid-binding agent, on type 2 diabetes, we examined gene expression of the livers of cholestyramine-treated type 2 diabetic model mice. Type 2 diabetic NSY/Hos mice were fed a high fat diet supplemented with 1% (w/w) cholestyramine for 8 weeks. Cholestyramine treatment prevented the increase in body weight, plasma cholesterol, triglycerides, glucose, insulin levels, and hepatic steatosis. DNA microarray analysis was performed on the liver, which revealed that the genes related to synthesis of cholesterol and its derivatives were increased and the genes regulated by liver X receptors, such as the sterol regulatory element-binding protein 1 gene, were decreased in the group treated with cholestyramine. Expression of the genes related to carbohydrate metabolism was little changed in the cholestyramine group. Furthermore, we performed real-time RT-PCR analysis, which highly correlated with DNA microarray data (r=0.957, P<0.001). This study provides a valuable basis for further research on the biological functions of bile acid-binding agents in models of type 2 diabetes.
Insights
Cholestyramine, a bile acid-binding agent, improved type 2 diabetes in mice by preventing weight gain and altering cholesterol metabolism gene expression. This suggests a molecular mechanism for its therapeutic potential in diabetes.
Area of Science:
- Metabolic diseases
- Molecular biology
- Pharmacology
Background:
- Bile acid-binding agents show promise for treating hypercholesterolemia and type 2 diabetes.
- Understanding the molecular mechanisms of these agents is crucial for therapeutic development.
Purpose of the Study:
- To investigate the molecular mechanism of cholestyramine's effect on type 2 diabetes.
- To analyze liver gene expression changes in cholestyramine-treated diabetic mice.
Main Methods:
- Type 2 diabetic mice (NSY/Hos) were fed a high-fat diet with cholestyramine for 8 weeks.
- Body weight, plasma parameters, and hepatic steatosis were measured.
- DNA microarray and real-time RT-PCR analyses were performed on liver tissue.
Main Results:
- Cholestyramine treatment prevented increases in body weight, plasma cholesterol, triglycerides, glucose, insulin, and hepatic steatosis.
- Microarray analysis revealed increased expression of cholesterol synthesis genes and decreased expression of liver X receptor-regulated genes.
- Gene expression changes related to carbohydrate metabolism were minimal.
Conclusions:
- Cholestyramine exerts beneficial effects on type 2 diabetes in mice, potentially through modulation of cholesterol metabolism pathways.
- The study provides a molecular basis for further research into bile acid-binding agents for diabetes treatment.
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