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The gliotransmitter ACBP controls feeding and energy homeostasis via the melanocortin system
Khalil Bouyakdan, … , Xavier Fioramonti, Thierry Alquier
Khalil Bouyakdan, … , Xavier Fioramonti, Thierry Alquier
Published June 3, 2019; First published April 2, 2019
Citation Information: J Clin Invest. 2019;129(6):2417-2430. https://doi.org/10.1172/JCI123454.
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Categories: Research Article Metabolism Neuroscience

The gliotransmitter ACBP controls feeding and energy homeostasis via the melanocortin system

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Abstract

Glial cells have emerged as key players in the central control of energy balance and etiology of obesity. Astrocytes play a central role in neural communication via the release of gliotransmitters. Acyl-CoA–binding protein–derived (ACBP-derived) endozepines are secreted peptides that modulate the GABAA receptor. In the hypothalamus, ACBP is enriched in arcuate nucleus (ARC) astrocytes, ependymocytes, and tanycytes. Central administration of the endozepine octadecaneuropeptide (ODN) reduces feeding and improves glucose tolerance, yet the contribution of endogenous ACBP in energy homeostasis is unknown. We demonstrated that ACBP deletion in GFAP+ astrocytes, but not in Nkx2.1-lineage neural cells, promoted diet-induced hyperphagia and obesity in both male and female mice, an effect prevented by viral rescue of ACBP in ARC astrocytes. ACBP+ astrocytes were observed in apposition with proopiomelanocortin (POMC) neurons, and ODN selectively activated POMC neurons through the ODN GPCR but not GABAA, and suppressed feeding while increasing carbohydrate utilization via the melanocortin system. Similarly, ACBP overexpression in ARC astrocytes reduced feeding and weight gain. Finally, the ODN GPCR agonist decreased feeding and promoted weight loss in ob/ob mice. These findings uncover ACBP as an ARC gliopeptide playing a key role in energy balance control and exerting strong anorectic effects via the central melanocortin system.

Authors

Khalil Bouyakdan, Hugo Martin, Fabienne Liénard, Lionel Budry, Bouchra Taib, Demetra Rodaros, Chloé Chrétien, Éric Biron, Zoé Husson, Daniela Cota, Luc Pénicaud, Stephanie Fulton, Xavier Fioramonti, Thierry Alquier

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Figure 3

ODN selectively activates POMC neurons in the ARC.

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ODN selectively activates POMC neurons in the ARC.
(A) Immunostaining of...
(A) Immunostaining of ACBP+ astrocytes (red) in close proximity to ARC POMC-eGFP neurons (green). Boxed area is represented with orthogonal projections. Scale bar: 100 μm in left panel and 25 μm in right panel. Representative images from 3 different mice. (B–E) Representative trace and quantification of action potential (AP) frequency in ARC POMC (B and C; n = 8 neurons from 7 mice) or non-POMC (D and E; n = 12 neurons from 7 mice) neurons in the presence or absence of 1 nM ODN. **P < 0.001 compared with control and #P < 0.05 compared with ODN, 1-way ANOVA with repeated measures with Bonferroni post hoc test.
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ISSN: 0021-9738 (print), 1558-8238 (online)

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