AMPK is essential for energy homeostasis regulation and glucose sensing by POMC and AgRP neurons
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Open Access
- 1 August 2007
- journal article
- Published by American Society for Clinical Investigation in Journal of Clinical Investigation
- Vol. 117 (8) , 2325-2336
- https://doi.org/10.1172/jci31516
Abstract
Hypothalamic AMP-activated protein kinase (AMPK) has been suggested to act as a key sensing mechanism, responding to hormones and nutrients in the regulation of energy homeostasis. However, the precise neuronal populations and cellular mechanisms involved are unclear. The effects of long-term manipulation of hypothalamic AMPK on energy balance are also unknown. To directly address such issues, we generated POMCα2KO and AgRPα2KO mice lacking AMPKα2 in proopiomelanocortin– (POMC-) and agouti-related protein–expressing (AgRP-expressing) neurons, key regulators of energy homeostasis. POMCα2KO mice developed obesity due to reduced energy expenditure and dysregulated food intake but remained sensitive to leptin. In contrast, AgRPα2KO mice developed an age-dependent lean phenotype with increased sensitivity to a melanocortin agonist. Electrophysiological studies in AMPKα2-deficient POMC or AgRP neurons revealed normal leptin or insulin action but absent responses to alterations in extracellular glucose levels, showing that glucose-sensing signaling mechanisms in these neurons are distinct from those pathways utilized by leptin or insulin. Taken together with the divergent phenotypes of POMCα2KO and AgRPα2KO mice, our findings suggest that while AMPK plays a key role in hypothalamic function, it does not act as a general sensor and integrator of energy homeostasis in the mediobasal hypothalamus.Keywords
This publication has 59 references indexed in Scilit:
- Melanocortins and agouti‐related protein modulate the excitability of two arcuate nucleus neuron populations by alteration of resting potassium conductancesThe Journal of Physiology, 2007
- Central nervous system control of food intake and body weightNature, 2006
- Enhanced PIP3 signaling in POMC neurons causes KATP channel activation and leads to diet-sensitive obesityJournal of Clinical Investigation, 2006
- Developing a head for energy sensing: AMP‐activated protein kinase as a multifunctional metabolic sensor in the brainThe Journal of Physiology, 2006
- AMP‐activated protein kinase – development of the energy sensor conceptThe Journal of Physiology, 2006
- Activation of AMP‐activated protein kinase in the liver: a new strategy for the management of metabolic hepatic disordersThe Journal of Physiology, 2006
- Functions of AMP‐activated protein kinase in adipose tissueThe Journal of Physiology, 2006
- Effects of Hypothalamic Neurodegeneration on Energy BalancePLoS Biology, 2005
- Leptin stimulates fatty-acid oxidation by activating AMP-activated protein kinaseNature, 2002
- The α1 and α2 isoforms of the AMP‐activated protein kinase have similar activities in rat liver but exhibit differences in substrate specificity in vitroFEBS Letters, 1996