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Metformin opposes impaired AMPK and SIRT1 function and deleterious changes in core clock protein expression in white
P W Caton1, J Kieswich, M M Yaqoob
1Centre for Diabetes, Blizard Institute, Bart's and the London School of Medicine and Dentistry, Queen Mary University of London, London, UK.
Aim:
AMPK activates SIRT1 in liver and skeletal muscle. Impaired circadian function is associated with development of obesity. SIRT1 regulates circadian function and is suppressed in white adipose tissue (WAT) of obese patients. We examined the potential role of AMPK and SIRT1 in regulation of circadian components in WAT of obese db/db mice and in mice fed a high-fat diet (HFD), and investigated whether metformin-mediated activation of AMPK opposed any deleterious changes in the WAT clock mechanism.
Methods:
db/+ and db/db mice were administered metformin (250 mg/kg/day; 7 days). Separately, mice were fed HFD for 16-weeks. 3T3-L1 adipocytes were incubated with metformin, EX527 or FK866, inhibitors of SIRT1 and NAMPT, respectively. Gene and protein expression were measured by qRT-PCR and immunoblotting.
Results:
AMPK activity, NAMPT expression and SIRT1 expression were decreased in WAT of db/db and HFD mice, in association with suppressed expression of the core circadian components CLOCK and BMAL1. Expression of Pparγ and the adipogenic repressors Irf3 and Irf4 were also suppressed. Metformin increased AMPK activity in WAT of db/db mice and in metformin-treated adipocytes, with increased NAMPT, SIRT1 and circadian component expression. Metformin-mediated induction of Clock mRNA in adipocytes was blocked by inhibition of NAMPT and SIRT1.
Conclusions:
Decreased AMPK-SIRT1 signalling in db/db and HFD mice impacts WAT circadian function causing dysregulated lipid regulation, favouring an obese phenotype. Metformin mediates a phenotypic shift away from lipid accretion through AMPK-NAMPT-SIRT1 mediated changes in clock components, supporting chronotherapeutic treatment approaches for obesity.
Insights
Metformin enhances AMPK-SIRT1 signaling in white adipose tissue, improving circadian function and lipid regulation in obesity models. This suggests chronotherapeutic approaches for obesity management.
Area of Science:
- Metabolism and Endocrinology
- Chronobiology
Background:
- Impaired circadian function is linked to obesity.
- SIRT1, a regulator of circadian rhythm, is suppressed in white adipose tissue (WAT) of obese individuals.
- AMP-activated protein kinase (AMPK) activates SIRT1 in various tissues.
Purpose of the Study:
- To investigate the role of AMPK and SIRT1 in regulating circadian components in WAT of obese mice (db/db and high-fat diet fed).
- To determine if metformin-mediated AMPK activation can counteract detrimental changes in the WAT clock mechanism.
Main Methods:
- Administration of metformin to db/db mice and high-fat diet (HFD) fed mice.
- Treatment of 3T3-L1 adipocytes with metformin, SIRT1 inhibitor (EX527), and NAMPT inhibitor (FK866).
- Measurement of gene and protein expression using qRT-PCR and immunoblotting.
Main Results:
- Obese mice (db/db and HFD) exhibited decreased AMPK activity, NAMPT, and SIRT1 expression, alongside suppressed core circadian components (CLOCK, BMAL1) and adipogenic regulators.
- Metformin treatment increased AMPK activity, NAMPT, SIRT1, and circadian component expression in WAT of db/db mice and adipocytes.
- Inhibition of NAMPT and SIRT1 blocked metformin's induction of Clock mRNA in adipocytes.
Conclusions:
- Reduced AMPK-SIRT1 signaling in obesity negatively impacts WAT circadian function, leading to dysregulated lipid metabolism and an obese phenotype.
- Metformin promotes a shift away from lipid accumulation by modulating clock components via the AMPK-NAMPT-SIRT1 pathway.
- Findings support the potential of chronotherapeutic strategies for obesity treatment.
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