Adipose tissue macrophages secrete small extracellular vesicles that mediate rosiglitazone-induced insulin sensitization.
| Citation | Rohm, Theresa, V, et al. “Adipose Tissue Macrophages Secrete Small Extracellular Vesicles That Mediate Rosiglitazone-Induced Insulin Sensitization”. 2024. Nature Metabolism, vol. 6, no. 5, 2024, pp. 880–898.  | 
       
| Center | UCSD-UCLA | 
| Author | Theresa Rohm V, Felipe Castellani Gomes Dos Reis, Roi Isaac, Cairo Murphy, Karina Cunha E Rocha, Gautam Bandyopadhyay, Hong Gao, Avraham M Libster, Rizaldy C Zapata, Yun Sok Lee, Wei Ying, Charlene Miciano, Allen Wang, Jerrold M Olefsky | 
| Abstract | 
   The obesity epidemic continues to worsen worldwide, driving metabolic and chronic inflammatory diseases. Thiazolidinediones, such as rosiglitazone (Rosi), are PPARγ agonists that promote 'M2-like' adipose tissue macrophage (ATM) polarization and cause insulin sensitization. As ATM-derived small extracellular vesicles (ATM-sEVs) from lean mice are known to increase insulin sensitivity, we assessed the metabolic effects of ATM-sEVs from Rosi-treated obese male mice (Rosi-ATM-sEVs). Here we show that Rosi leads to improved glucose and insulin tolerance, transcriptional repolarization of ATMs and increased sEV secretion. Administration of Rosi-ATM-sEVs rescues obesity-induced glucose intolerance and insulin sensitivity in vivo without the known thiazolidinedione-induced adverse effects of weight gain or haemodilution. Rosi-ATM-sEVs directly increase insulin sensitivity in adipocytes, myotubes and primary mouse and human hepatocytes. Additionally, we demonstrate that the miRNAs within Rosi-ATM-sEVs, primarily miR-690, are responsible for these beneficial metabolic effects. Thus, using ATM-sEVs with specific miRNAs may provide a therapeutic path to induce insulin sensitization.  | 
        
| Year of Publication | 
   2024 
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| Journal | 
   Nature metabolism 
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| Volume | 
   6 
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| Issue | 
   5 
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| Number of Pages | 
   880-898 
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| Date Published | 
   05/2024 
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| ISSN Number | 
   2522-5812 
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| DOI | 
   10.1038/s42255-024-01023-w 
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| Alternate Journal | 
   Nat Metab 
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| PMID | 
   38605183 
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