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Organ-differential Roles of Akt/FoxOs Axis as a Key Metabolic Modulator during Aging
Dae Hyun Kim1, EunJin Bang1, Sugyeong Ha1
11Department of Pharmacy, College of Pharmacy, Pusan National University, Gumjung-gu, Busan 46241, Korea.
Abstract:
FoxOs and their post-translational modification by phosphorylation, acetylation, and methylation can affect epigenetic modifications and promote the expression of downstream target genes. Therefore, they ultimately affect cellular and biological functions during aging or occurrence of age-related diseases including cancer, diabetes, and kidney diseases. As known for its key role in aging, FoxOs play various biological roles in the aging process by regulating reactive oxygen species, lipid accumulation, and inflammation. FoxOs regulated by PI3K/Akt pathway modulate the expression of various target genes encoding MnSOD, catalases, PPARγ, and IL-1β during aging, which are associated with age-related diseases. This review highlights the age-dependent differential regulatory mechanism of Akt/FoxOs axis in metabolic and non-metabolic organs. We demonstrated that age-dependent suppression of Akt increases the activity of FoxOs (Akt/FoxOs axis upregulation) in metabolic organs such as liver and muscle. This Akt/FoxOs axis could be modulated and reversed by antiaging paradigm calorie restriction (CR). In contrast, hyperinsulinemia-mediated PI3K/Akt activation inhibited FoxOs activity (Akt/FoxOs axis downregulation) leading to decrease of antioxidant genes expression in non-metabolic organs such as kidneys and lungs during aging. These phenomena are reversed by CR. The results of studies on the process of aging and CR indicate that the Akt/FoxOs axis plays a critical role in regulating metabolic homeostasis, redox stress, and inflammation in various organs during aging process. The benefical actions of CR on the Akt/FoxOs axis in metabolic and non-metabolic organs provide further insights into the molecular mechanisms of organ-differential roles of Akt/FoxOs axis during aging.
Insights
The Akt/FoxOs axis regulates aging and age-related diseases differently in metabolic and non-metabolic organs. Calorie restriction (CR) reverses these age-dependent changes, highlighting its anti-aging potential.
Area of Science:
- Molecular Biology
- Aging Research
- Cellular Biology
Background:
- Forkhead box proteins (FoxOs) are crucial transcription factors involved in aging and age-related diseases.
- Post-translational modifications of FoxOs influence gene expression and cellular functions.
- The PI3K/Akt pathway significantly regulates FoxOs activity.
Purpose of the Study:
- To review the age-dependent regulatory mechanisms of the Akt/FoxOs axis in various organs.
- To investigate the role of calorie restriction (CR) in modulating the Akt/FoxOs axis during aging.
- To elucidate the organ-differential effects of the Akt/FoxOs axis on metabolic homeostasis, redox stress, and inflammation.
Main Methods:
- Review of existing literature on the Akt/FoxOs axis in aging.
- Analysis of age-dependent changes in Akt/FoxOs activity in metabolic and non-metabolic organs.
- Examination of the effects of calorie restriction (CR) on the Akt/FoxOs axis.
Main Results:
- In metabolic organs (liver, muscle), Akt suppression increases FoxOs activity (upregulation) with aging, a process reversed by CR.
- In non-metabolic organs (kidneys, lungs), hyperinsulinemia-induced Akt activation inhibits FoxOs activity (downregulation) with aging, also reversed by CR.
- The Akt/FoxOs axis plays a critical role in regulating metabolic homeostasis, redox stress, and inflammation across different organs during aging.
Conclusions:
- The Akt/FoxOs axis exhibits differential regulation in metabolic versus non-metabolic organs during aging.
- Calorie restriction (CR) effectively modulates the Akt/FoxOs axis, offering potential anti-aging benefits.
- Understanding these organ-specific mechanisms provides insights into aging and age-related disease prevention.
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