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Updated: Jan 29, 2026

Visualization and Quantification of Mesenchymal Cell Adipogenic Differentiation Potential with a Lineage Specific Marker
Published on: March 31, 2018
A novel peptide suppresses adipogenic differentiation through activation of the AMPK pathway
Dan Shen1, Yun Li1, Xing Wang1
1Nanjing Maternal and Child Health Institute, Women's Hospital of Nanjing Medical University(Nanjing Maternity and Child Health Care Hospital), Nanjing, 210004, China.
Abstract:
Obesity rates have risen rapidly over the past several decades and obesity is now a global public health challenge. The reduction of excessive adipogenesis is thought to be an effective intervention for obesity and obesity-related metabolic diseases such as type 2 diabetes. In this study, a novel peptide PDBSN was identified that functions to suppress adipogenesis. In both human preadipocytes and mouse adipose-derived stem cells (ADSCs), PDBSN exhibited a suppressive effect on the accumulation of lipids and the expression of genes as well as their corresponding proteins (CCAAT/enhancer binding protein (C/EBP)β, C/EBPα and nuclear receptor peroxisome proliferator-activated receptor γ (PPARγ)) relevant to adipogenic cell differentiation. Although adipogenesis decreased, the preadipocyte number and proliferation were not influenced by the PDBSN treatment. Apoptosis and the cell cycle were also determined to not have a role in the action of PDBSN. Mechanistically, the activity of the AMPK (adenosine 5'-monophosphate-activated protein kinase) pathway was markedly increased upon PDBSN treatment. Moreover, treatment of preadipocytes with compound C, a selective AMPK inhibitor, abolished the effect of PDBSN in anti-adipogenesis, suggesting that the function of PDBSN relied on the AMPK pathway. These results suggest an effective role for PDBSN in suppressing adipogenesis and show potential for anti-obesity drug discovery.
Insights
A novel peptide, PDBSN, effectively suppresses adipogenesis by activating the AMPK pathway. This discovery offers potential for developing new anti-obesity drugs and treating metabolic diseases like type 2 diabetes.
Area of Science:
- Biochemistry
- Cell Biology
- Metabolic Disease Research
Background:
- Obesity is a global health crisis linked to metabolic diseases.
- Reducing excessive adipogenesis (fat cell formation) is a key intervention strategy.
- Novel therapeutic targets for obesity are urgently needed.
Purpose of the Study:
- To identify and characterize a novel peptide, PDBSN, that suppresses adipogenesis.
- To elucidate the mechanism of action for PDBSN in inhibiting fat cell differentiation.
- To evaluate PDBSN's potential for anti-obesity drug discovery.
Main Methods:
- PDBSN treatment on human preadipocytes and mouse adipose-derived stem cells (ADSCs).
- Assessed lipid accumulation and expression of key adipogenic genes/proteins (C/EBPβ, C/EBPα, PPARγ).
- Investigated the role of the AMPK pathway using compound C, an AMPK inhibitor.
Main Results:
- PDBSN significantly suppressed lipid accumulation and adipogenic gene/protein expression.
- PDBSN did not affect preadipocyte proliferation, apoptosis, or cell cycle.
- PDBSN treatment markedly increased AMPK pathway activity, which was essential for its anti-adipogenic effect.
Conclusions:
- PDBSN effectively inhibits adipogenesis through the AMPK pathway.
- PDBSN demonstrates potential as a therapeutic agent for obesity and related metabolic disorders.
- Further research into PDBSN could lead to novel anti-obesity drug development.
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