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Partitioning of adipose lipid metabolism by altered expression and function of PPAR isoforms after bariatric surgery
C Jahansouz1, H Xu2, A V Hertzel2
1Department of Surgery, University of Minnesota, Minneapolis, MN, USA.
Background:
Bariatric surgery remains the most effective treatment for reducing adiposity and eliminating type 2 diabetes; however, the mechanism(s) responsible have remained elusive. Peroxisome proliferator-activated receptors (PPAR) encompass a family of nuclear hormone receptors that upon activation exert control of lipid metabolism, glucose regulation and inflammation. Their role in adipose tissue following bariatric surgery remains undefined.
Materials And Methods:
Subcutaneous adipose tissue biopsies and serum were obtained and evaluated from time of surgery and on postoperative day 7 in patients randomized to Roux-en-Y gastric bypass (n=13) or matched caloric restriction (n=14), as well as patients undergoing vertical sleeve gastrectomy (n=33). Fat samples were evaluated for changes in gene expression, protein levels, β-oxidation, lipolysis and cysteine oxidation.
Results:
Within 7 days, bariatric surgery acutely drives a change in the activity and expression of PPARγ and PPARδ in subcutaneous adipose tissue thereby attenuating lipid storage, increasing lipolysis and potentiating lipid oxidation. This unique metabolic alteration leads to changes in downstream PPARγ/δ targets including decreased expression of fatty acid binding protein (FABP) 4 and stearoyl-CoA desaturase-1 (SCD1) with increased expression of carnitine palmitoyl transferase 1 (CPT1) and uncoupling protein 2 (UCP2). Increased expression of UCP2 not only facilitated fatty acid oxidation (increased 15-fold following surgery) but also regulated the subcutaneous adipose tissue redoxome by attenuating protein cysteine oxidation and reducing oxidative stress. The expression of UCP1, a mitochondrial protein responsible for the regulation of fatty acid oxidation and thermogenesis in beige and brown fat, was unaltered following surgery.
Conclusions:
These results suggest that bariatric surgery initiates a novel metabolic shift in subcutaneous adipose tissue to oxidize fatty acids independently from the beiging process through regulation of PPAR isoforms. Further studies are required to understand the contribution of this shift in expression of PPAR isoforms to weight loss following bariatric surgery.
Insights
Bariatric surgery rapidly alters peroxisome proliferator-activated receptors (PPAR) in fat tissue, increasing fatty acid oxidation and reducing oxidative stress. This metabolic shift enhances weight loss independently of fat cell browning.
Area of Science:
- Metabolic Surgery
- Adipose Tissue Biology
- Nuclear Receptors
Background:
- Bariatric surgery is highly effective for obesity and type 2 diabetes, but underlying mechanisms are unclear.
- Peroxisome proliferator-activated receptors (PPAR) regulate metabolism, but their role in adipose tissue post-bariatric surgery is unknown.
Purpose of the Study:
- To investigate the role of PPAR isoforms in subcutaneous adipose tissue following bariatric surgery.
- To determine the impact of bariatric surgery on lipid metabolism and oxidative stress in adipose tissue.
Main Methods:
- Subcutaneous adipose tissue and serum were collected from patients undergoing Roux-en-Y gastric bypass, vertical sleeve gastrectomy, or matched caloric restriction.
- Analysis included gene expression, protein levels, beta-oxidation, lipolysis, and cysteine oxidation.
Main Results:
- Within 7 days, bariatric surgery altered PPARγ and PPARδ activity and expression in subcutaneous adipose tissue.
- This led to increased lipolysis, enhanced fatty acid oxidation (15-fold increase in UCP2 expression), and reduced oxidative stress.
- Key downstream targets like FABP4 and SCD1 decreased, while CPT1 and UCP2 increased, independent of UCP1 expression.
Conclusions:
- Bariatric surgery induces a rapid metabolic shift in adipose tissue to oxidize fatty acids via PPAR regulation, independent of fat cell browning.
- This PPAR-mediated pathway may contribute to weight loss, warranting further investigation.
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