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FoxO1 Is a Novel Regulator of 20S Proteasome Subunits Expression and Activity
Marianna Kapetanou1, Tobias Nespital2, Luke S Tain2
1Laboratory of Molecular and Cellular Aging, Institute of Chemical Biology, National Hellenic Research Foundation, Athens, Greece.
Abstract:
Proteostasis collapses during aging resulting, among other things, in the accumulation of damaged and aggregated proteins. The proteasome is the main cellular proteolytic system and plays a fundamental role in the maintenance of protein homeostasis. Our previous work has demonstrated that senescence and aging are related to a decline in proteasome content and activities, while its activation extends lifespan in vitro and in vivo in various species. However, the mechanisms underlying this age-related decline of proteasome function and the down-regulation in expression of its subunits remain largely unclear. Here, we demonstrate that the Forkhead box-O1 (FoxO1) transcription factor directly regulates the expression of a 20S proteasome catalytic subunit and, hence, proteasome activity. Specifically, we demonstrate that knockout of FoxO1, but not of FoxO3, in mice severely impairs proteasome activity in several tissues, while depletion of IRS1 enhances proteasome function. Importantly, we show that FoxO1 directly binds on the promoter region of the rate-limiting catalytic β5 proteasome subunit to regulate its expression. In summary, this study reveals the direct role of FoxO factors in the regulation of proteasome function and provides new insight into how FoxOs affect proteostasis and, in turn, longevity.
Insights
Aging causes proteostasis collapse and protein aggregation. Forkhead box-O1 (FoxO1) directly regulates proteasome function, impacting cellular protein balance and longevity.
Area of Science:
- Molecular Biology
- Cellular Aging
- Proteostasis Mechanisms
Background:
- Aging leads to proteostasis collapse and protein aggregation.
- The proteasome is crucial for protein homeostasis, declining with age.
- Mechanisms behind age-related proteasome decline are poorly understood.
Purpose of the Study:
- To investigate the role of Forkhead box-O1 (FoxO1) in regulating proteasome function during aging.
- To elucidate the molecular mechanisms linking FoxO1 to proteasome subunit expression and activity.
Main Methods:
- Utilized mouse models with targeted gene knockouts (FoxO1, FoxO3).
- Assessed proteasome activity in various tissues.
- Performed molecular analyses, including promoter binding assays for FoxO1 and proteasome subunit genes.
Main Results:
- FoxO1 directly regulates the expression of a 20S proteasome catalytic subunit.
- FoxO1 knockout significantly impairs proteasome activity in multiple tissues.
- IRS1 depletion enhances proteasome function, while FoxO1 binds to the promoter of the rate-limiting β5 subunit.
Conclusions:
- FoxO1 is a key regulator of proteasome function and expression.
- This study reveals a direct link between FoxO factors, proteasome activity, and proteostasis maintenance.
- Findings offer new insights into aging and longevity pathways involving proteasome regulation.
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