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Study of In Vivo Glucose Metabolism in High-fat Diet-fed Mice Using Oral Glucose Tolerance Test (OGTT) and Insulin Tolerance Test (ITT)
Published on: January 7, 2018
Extract from Dioscorea batatas ameliorates insulin resistance in mice fed a high-fat diet
Soyoung Kim1, Hyejeong Jwa, Yasuko Yanagawa
1Department of Food and Nutrition, Yonsei University, Seoul, Korea.
Abstract:
The aim of this study was to investigate whether Dioscorea batatas (DB) extract attenuates high-fat diet (HFD)-induced insulin resistance in the visceral adipose tissues of mice, and by what mechanism(s). Mice were fed a HFD for 4 weeks to induce the early development of insulin resistance. The DB extract was administered to mice fed a HFD by oral gavage at a dose of 100 mg/kg body weight daily for 7 weeks. Biochemical parameters in blood were measured using enzymatic kits, and the expression levels of glucose transporter 4 (GLUT4), phosphorylated (p-)S6K1, phosphorylated v-akt murine thymoma viral oncogene homolog (p-AKT), and phosphorylated extracellular regulated kinase (p-ERK) in epididymal fat tissue were determined by western blot analyses. The DB extract effectively reversed the HFD-induced elevations in plasma glucose and insulin levels, and the homeostasis model assessment for insulin resistance and oral glucose tolerance test values. The level of p-AKT protein was up-regulated, whereas the levels of p-ERK and p-S6K1 proteins were down-regulated in the adipose tissues of DB mice compared with HFD mice. Furthermore, the DB extract significantly reversed the HFD-induced decrease in the plasma membrane GLUT4 level in the adipose tissue of mice. The DB extract improved glucose metabolism in HFD-fed mice through the up-regulation of plasma membrane GLUT4 content in the visceral adipose tissue. Activation of the insulin signaling cascade leading to GLUT4 translocation was the mechanism underlying the beneficial effects of the DB extract on early-stage obesity-induced insulin resistance.
Insights
Dioscorea batatas (DB) extract improved glucose metabolism in mice fed a high-fat diet (HFD). DB extract enhanced insulin sensitivity by increasing glucose transporter 4 (GLUT4) in visceral adipose tissue.
Area of Science:
- Metabolic research
- Nutritional science
- Pharmacology
Background:
- High-fat diets (HFD) induce insulin resistance, a precursor to type 2 diabetes.
- Visceral adipose tissue plays a critical role in metabolic dysfunction.
- Early-stage insulin resistance requires effective therapeutic interventions.
Purpose of the Study:
- To determine if Dioscorea batatas (DB) extract can mitigate HFD-induced insulin resistance in mice.
- To elucidate the underlying molecular mechanisms of DB extract's action in visceral adipose tissue.
Main Methods:
- Mice were fed an HFD for 4 weeks, followed by 7 weeks of DB extract administration (100 mg/kg).
- Blood biochemical parameters were analyzed using enzymatic kits.
- Western blot analysis assessed protein expression levels, including glucose transporter 4 (GLUT4), p-AKT, p-ERK, and p-S6K1 in epididymal fat.
Main Results:
- DB extract reversed HFD-induced increases in plasma glucose and insulin levels.
- DB extract normalized insulin resistance markers and improved oral glucose tolerance.
- DB extract up-regulated p-AKT and down-regulated p-ERK and p-S6K1 in adipose tissue.
- DB extract increased plasma membrane GLUT4 levels in visceral adipose tissue.
Conclusions:
- Dioscorea batatas extract effectively ameliorates early-stage insulin resistance caused by HFD.
- The beneficial effects are mediated by the up-regulation of GLUT4 translocation in visceral adipose tissue.
- Activation of the insulin signaling pathway, particularly involving AKT, is a key mechanism.
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