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Measuring the Rate of Lipolysis in Ex Vivo Murine Adipose Tissue and Primary Preadipocytes Differentiated In Vitro
Published on: March 17, 2023
Annexin A1 binds PDZ and LIM domain 7 to inhibit adipogenesis and prevent obesity
Lu Fang1, Changjie Liu2, Zong-Zhe Jiang3,4
1The Institute of Cardiovascular Sciences and Institute of Systems Biomedicine, School of Basic Medical Sciences, State Key Laboratory of Vascular Homeostasis and Remodeling, NHC Key Laboratory of Cardiovascular Molecular Biology and Regulatory Peptides, Beijing Key Laboratory of Cardiovascular Receptors Research, Health Science Center, Peking University, 100191, Beijing, China.
Abstract:
Obesity is a global issue that warrants the identification of more effective therapeutic targets and a better understanding of the pivotal molecular pathogenesis. Annexin A1 (ANXA1) is known to inhibit phospholipase A2, exhibiting anti-inflammatory activity. However, the specific effects of ANXA1 in obesity and the underlying mechanisms of action remain unclear. Our study reveals that ANXA1 levels are elevated in the adipose tissue of individuals with obesity. Whole-body or adipocyte-specific ANXA1 deletion aggravates obesity and metabolic disorders. ANXA1 levels are higher in stromal vascular fractions (SVFs) than in mature adipocytes. Further investigation into the role of ANXA1 in SVFs reveals that ANXA1 overexpression induces lower numbers of mature adipocytes, while ANXA1-knockout SVFs exhibit the opposite effect. This suggests that ANXA1 plays an important role in adipogenesis. Mechanistically, ANXA1 competes with MYC binding protein 2 (MYCBP2) for interaction with PDZ and LIM domain 7 (PDLIM7). This exposes the MYCBP2-binding site, allowing it to bind more readily to the SMAD family member 4 (SMAD4) and promoting its ubiquitination and degradation. SMAD4 degradation downregulates peroxisome proliferator-activated receptor gamma (PPARγ) transcription and reduces adipogenesis. Treatment with Ac2-26, an active peptide derived from ANXA1, inhibits both adipogenesis and obesity through the mechanism. In conclusion, the molecular mechanism of ANXA1 inhibiting adipogenesis was first uncovered in our study, which is a potential target for obesity prevention and treatment.
Insights
Annexin A1 (ANXA1) inhibits adipogenesis by promoting SMAD4 degradation, offering a novel therapeutic target for obesity. Reduced ANXA1 exacerbates obesity and metabolic dysfunction, highlighting its crucial role.
Area of Science:
- Molecular biology
- Metabolic disease research
- Biochemistry
Background:
- Obesity is a global health concern requiring new therapeutic strategies.
- Annexin A1 (ANXA1) has anti-inflammatory properties but its role in obesity is unclear.
- Understanding ANXA1's molecular pathogenesis is crucial for developing effective obesity treatments.
Purpose of the Study:
- To investigate the role and mechanism of Annexin A1 (ANXA1) in obesity and adipogenesis.
- To identify ANXA1 as a potential therapeutic target for metabolic disorders.
Main Methods:
- Analysis of ANXA1 levels in adipose tissue from obese individuals.
- Genetic manipulation of ANXA1 in whole-body and adipocyte-specific models.
- Investigating ANXA1's interaction with MYCBP2, PDLIM7, and SMAD4 in stromal vascular fractions (SVFs).
- Assessing the effect of Ac2-26 peptide on adipogenesis and obesity.
Main Results:
- ANXA1 levels are elevated in obesity and its deletion worsens metabolic disorders.
- ANXA1 inhibits adipogenesis by preventing MYCBP2-SMAD4 interaction, leading to SMAD4 degradation.
- SMAD4 degradation downregulates PPARγ transcription, reducing adipocyte differentiation.
- Ac2-26 peptide, derived from ANXA1, demonstrated anti-obesity and anti-adipogenic effects.
Conclusions:
- ANXA1 plays a critical role in regulating adipogenesis and preventing obesity.
- The study elucidates the molecular mechanism of ANXA1 in inhibiting adipogenesis via the MYCBP2-PDLIM7-SMAD4 pathway.
- ANXA1 and its peptide Ac2-26 represent promising therapeutic targets for obesity intervention.
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