Author
Listed:
- Yong Han
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- Guobin Xia
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- Dollada Srisai
(Vanderbilt University School of Medicine)
- Fantao Meng
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine
University of Texas Southwestern Medical Center)
- Yanlin He
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine
Pennington Biomedical Research Center, Louisiana State University System)
- Yali Ran
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- Yang He
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- Monica Farias
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- Giang Hoang
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- István Tóth
(Szent Istvan University
Yale University School of Medicine)
- Marcelo O. Dietrich
(Yale University School of Medicine)
- Miao-Hsueh Chen
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- Yong Xu
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
- Qi Wu
(USDA/ARS Children’s Nutrition Research Center, Baylor College of Medicine
Baylor College of Medicine)
Abstract
Contrasting to the established role of the hypothalamic agouti-related protein (AgRP) neurons in feeding regulation, the neural circuit and signaling mechanisms by which they control energy expenditure remains unclear. Here, we report that energy expenditure is regulated by a subgroup of AgRP neurons that send non-collateral projections to neurons within the dorsal lateral part of dorsal raphe nucleus (dlDRN) expressing the melanocortin 4 receptor (MC4R), which in turn innervate nearby serotonergic (5-HT) neurons. Genetic manipulations reveal a bi-directional control of energy expenditure by this circuit without affecting food intake. Fiber photometry and electrophysiological results indicate that the thermo-sensing MC4RdlDRN neurons integrate pre-synaptic AgRP signaling, thereby modulating the post-synaptic serotonergic pathway. Specifically, the MC4RdlDRN signaling elicits profound, bi-directional, regulation of body weight mainly through sympathetic outflow that reprograms mitochondrial bioenergetics within brown and beige fat while feeding remains intact. Together, we suggest that this AgRP neural circuit plays a unique role in persistent control of energy expenditure and body weight, hinting next-generation therapeutic approaches for obesity and metabolic disorders.
Suggested Citation
Yong Han & Guobin Xia & Dollada Srisai & Fantao Meng & Yanlin He & Yali Ran & Yang He & Monica Farias & Giang Hoang & István Tóth & Marcelo O. Dietrich & Miao-Hsueh Chen & Yong Xu & Qi Wu, 2021.
"Deciphering an AgRP-serotoninergic neural circuit in distinct control of energy metabolism from feeding,"
Nature Communications, Nature, vol. 12(1), pages 1-16, December.
Handle:
RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-23846-x
DOI: 10.1038/s41467-021-23846-x
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