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PPARγ ablation sensitizes proopiomelanocortin neurons to leptin during high-fat feeding
Lihong Long, … , Tamas L. Horvath, Sabrina Diano
Lihong Long, … , Tamas L. Horvath, Sabrina Diano
Published August 1, 2014
Citation Information: J Clin Invest. 2014;124(9):4017-4027. https://doi.org/10.1172/JCI76220.
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Research Article Metabolism

PPARγ ablation sensitizes proopiomelanocortin neurons to leptin during high-fat feeding

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Abstract

Activation of central PPARγ promotes food intake and body weight gain; however, the identity of the neurons that express PPARγ and mediate the effect of this nuclear receptor on energy homeostasis is unknown. Here, we determined that selective ablation of PPARγ in murine proopiomelanocortin (POMC) neurons decreases peroxisome density, elevates reactive oxygen species, and induces leptin sensitivity in these neurons. Furthermore, ablation of PPARγ in POMC neurons preserved the interaction between mitochondria and the endoplasmic reticulum, which is dysregulated by HFD. Compared with control animals, mice lacking PPARγ in POMC neurons had increased energy expenditure and locomotor activity; reduced body weight, fat mass, and food intake; and improved glucose metabolism when exposed to high-fat diet (HFD). Finally, peripheral administration of either a PPARγ activator or inhibitor failed to affect food intake of mice with POMC-specific PPARγ ablation. Taken together, our data indicate that PPARγ mediates cellular, biological, and functional adaptations of POMC neurons to HFD, thereby regulating whole-body energy balance.

Authors

Lihong Long, Chitoku Toda, Jing Kwon Jeong, Tamas L. Horvath, Sabrina Diano

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Figure 2

Lower peroxisome density and elevated ROS levels and neuronal activation in POMC neurons of Pomc-Cre Ppargfl/fl mice on HFD is associated with a leaner phenotype.

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Lower peroxisome density and elevated ROS levels and neuronal activation...
Analysis of (A and B) body weight (n = 9–14 per group), (C and D) fat mass (n = 9–14 per group), and (E and F) lean mass (n = 9–14 per group) showed that both (A, C, and E) female and (B, D, and F) male Pomc-Cre Ppargfl/fl mice were resistant to HFD compared with littermate controls. Data in all graphs are shown as mean ± SEM. *P < 0.05; **P < 0.01; ***P < 0.001.

Copyright © 2022 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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