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PKA functions in metabolism and resistance to obesity: lessons from mouse and human studies
Edra London1, Michelle Bloyd1, Constantine A Stratakis1
1Section on Endocrinology and Genetics WEunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland, USA.
Abstract:
Both direct and indirect evidence demonstrate a central role for the cAMP-dependent protein kinase (PKA) signaling pathway in the regulation of energy balance and metabolism across multiple systems. However, the ubiquitous pattern of PKA expression across cell types poses a challenge in pinpointing its tissue-specific regulatory functions and further characterizing its many downstream effects in certain organs or cells. Mouse models of PKA deficiency and over-expression and studies in living cells have helped clarify PKA function in adipose tissue (AT), liver, adrenal, pancreas, and specific brain nuclei, as they pertain to energy balance and metabolic dysregulation. Limited studies in humans suggest differential regulation of PKA in AT of obese compared to lean individuals and an overall dysregulation of PKA signaling in obesity. Despite its complexity, under normal physiologic conditions, the PKA system is tightly regulated by changes in cAMP concentrations upstream via adenylate cyclase and downstream by phosphodiesterase-mediated cAMP degradation to AMP and by changes in PKA holoenzyme stability. Adjustments in the PKA system appear to be important to the development and maintenance of the obese state and its associated metabolic perturbations. In this review we discuss the important role of PKA in obesity and its involvement in resistance to obesity, through studies in humans and in mouse models, with a focus on the regulation of PKA in energy expenditure, intake behavior, and lipid and glucose metabolism.
Insights
The cAMP-dependent protein kinase (PKA) pathway is crucial for regulating energy balance and metabolism. Dysregulation of PKA signaling contributes to obesity and associated metabolic issues.
Area of Science:
- Metabolic signaling pathways
- Obesity research
- Endocrinology
Background:
- The cAMP-dependent protein kinase (PKA) signaling pathway plays a vital role in regulating energy balance and metabolism.
- Ubiquitous PKA expression complicates understanding its tissue-specific functions.
- Dysregulation of PKA is implicated in obesity and metabolic disorders.
Purpose of the Study:
- To review the role of PKA in obesity and obesity resistance.
- To examine PKA regulation in energy expenditure, intake behavior, and lipid/glucose metabolism.
- To synthesize findings from human and mouse model studies.
Main Methods:
- Review of existing literature on PKA signaling in metabolism.
- Analysis of data from mouse models with PKA deficiency or overexpression.
- Examination of human studies investigating PKA in obesity.
Main Results:
- PKA is critical for regulating energy balance and metabolism across various tissues.
- Studies in mouse models and humans indicate PKA dysregulation in obesity.
- Altered PKA activity is linked to energy expenditure, appetite, and metabolic perturbations.
Conclusions:
- The PKA signaling pathway is a key player in the development and maintenance of obesity.
- Understanding PKA regulation is essential for developing strategies to combat obesity and metabolic dysfunction.
- Targeting PKA may offer therapeutic potential for metabolic diseases.
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