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Semi-Automated Isolation of the Stromal Vascular Fraction from Murine White Adipose Tissue Using a Tissue Dissociator
Published on: May 19, 2023
Adipose tissue-targeted 11β-hydroxysteroid dehydrogenase type 1 inhibitor protects against diet-induced obesity
Juan Liu1, Long Wang, Aisen Zhang
1Department of Geratology, the First Hospital Affiliated to Nanjing Medical University, Nanjing, P.R.China.
Abstract:
Current pharmacological treatments for obesity and metabolic syndrome have various limitations. Recently, adipose tissue 11β-hydroxysteroid dehydrogenase type 1 (11β-HSD1) has been proposed as a novel therapeutic target for the treatment of obesity and metabolic syndrome. Nevertheless, there is no adipose tissue-targeted 11β-HSD1 inhibitor available now. We sought to develop a new 11β-HSD1 pharmacological inhibitor that homes specifically to the white adipose tissue and aimed to investigate whether adipose tissue-targeted 11β-HSD1 inhibitor might decrease body weight gain and improve glucose tolerance in diet-induced obesity mice. BVT.2733, an 11β-HSD1 selective inhibitor was connected with a peptide CKGGRAKDC that homes to white fat vasculature. CKGGRAKDC-BVT.2733 (T-BVT) or an equimolar mixture of CKGGRAKDC and BVT.2733 (NT-BVT) was given to diet-induced obesity mice for two weeks through subcutaneous injection. T-BVT decreased body weight gain, improved glucose tolerance and decreased adipocyte size compared with vehicle treated mice. In adipose tissue T-BVT administration significantly increased adiponectin, vaspin mRNA levels; In liver T-BVT administration decreased the mRNA level of phosphoenolpyruvate carboxykinase (PEPCK), increased the mRNA levels of mitochondrial carnitine palmi-toyltransferase-I (mCPT-I) and peroxisome proliferator-activated receptorα(PPARα). No significant differences in adipocyte size and hepatic gene expression were observed after treatment with NT-BVT compared with vehicle treated mice, though NT-BVT also decreased body weight gain, improved glucose tolerance, and increased uncoupling protein-2 (UCP-2) mRNA levels in muscle. These results suggest that an adipose tissue-targeted pharmacological inhibitor of 11β-HSD1 may prove to be a new approach for the treatment of obesity and metabolic syndrome.
Insights
A novel adipose tissue-targeted 11β-hydroxysteroid dehydrogenase type 1 (11β-HSD1) inhibitor reduced body weight gain and improved glucose tolerance in obese mice. This targeted approach offers a promising new strategy for treating obesity and metabolic syndrome.
Area of Science:
- Pharmacology
- Metabolic Diseases
- Obesity Research
Background:
- Current obesity and metabolic syndrome treatments have limitations.
- Adipose tissue 11β-hydroxysteroid dehydrogenase type 1 (11β-HSD1) is a potential therapeutic target.
- No adipose tissue-specific 11β-HSD1 inhibitors are currently available.
Purpose of the Study:
- To develop a novel 11β-HSD1 inhibitor targeted to white adipose tissue.
- To evaluate the efficacy of this targeted inhibitor in reducing body weight gain and improving glucose tolerance in diet-induced obese mice.
Main Methods:
- An 11β-HSD1 inhibitor (BVT.2733) was conjugated to a white fat-homing peptide (CKGGRAKDC) to create T-BVT.
- T-BVT or a non-targeted mixture (NT-BVT) was administered to diet-induced obese mice for two weeks.
- Body weight, glucose tolerance, adipocyte size, and gene expression in adipose tissue, liver, and muscle were assessed.
Main Results:
- T-BVT significantly decreased body weight gain, improved glucose tolerance, and reduced adipocyte size compared to vehicle.
- T-BVT increased adiponectin and vaspin mRNA in adipose tissue and altered hepatic gene expression (decreased PEPCK, increased mCPT-I and PPARα).
- NT-BVT showed some systemic benefits but lacked the specific adipose tissue effects observed with T-BVT.
Conclusions:
- Adipose tissue-targeted inhibition of 11β-HSD1 is effective in ameliorating obesity and metabolic dysfunction in mice.
- This targeted pharmacological approach represents a novel therapeutic strategy for obesity and metabolic syndrome.
- Further research into adipose tissue-specific drug delivery holds significant promise for metabolic disease treatment.
