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Recombinant α- β- and γ-Synucleins Stimulate Protein Phosphatase 2A Catalytic Subunit Activity in Cell Free Assays
Published on: August 13, 2017
Protein phosphatase 2A activators reverse age-related behavioral changes by targeting neural cell senescence
Jun Xing1,2, Kehua Chen1,2, Shuaiyun Gao1,2
1Geriatric Department, Geriatric Medical Center, Shanghai Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Abstract:
The contribution of cellular senescence to the behavioral changes observed in the elderly remains elusive. Here, we observed that aging is associated with a decline in protein phosphatase 2A (PP2A) activity in the brains of zebrafish and mice. Moreover, drugs activating PP2A reversed age-related behavioral changes. We developed a transgenic zebrafish model to decrease PP2A activity in the brain through knockout of the ppp2r2c gene encoding a regulatory subunit of PP2A. Mutant fish exhibited the behavioral phenotype observed in old animals and premature accumulation of neural cells positive for markers of cellular senescence, including senescence-associated β-galactosidase, elevated levels cdkn2a/b, cdkn1a, senescence-associated secretory phenotype gene expression, and an increased level of DNA damage signaling. The behavioral and cell senescence phenotypes were reversed in mutant fish through treatment with the senolytic ABT263 or diverse PP2A activators as well as through cdkn1a or tp53 gene ablation. Senomorphic function of PP2A activators was demonstrated in mouse primary neural cells with downregulated Ppp2r2c. We conclude that PP2A reduction leads to neural cell senescence thereby contributing to age-related behavioral changes and that PP2A activators have senotherapeutic properties against deleterious behavioral effects of brain aging.
Insights
Brain aging causes behavioral changes linked to reduced protein phosphatase 2A (PP2A) activity. Activating PP2A or using senotherapeutics reversed these changes, suggesting new treatments for age-related cognitive decline.
Area of Science:
- Neuroscience
- Cell Biology
- Gerontology
Background:
- Cellular senescence's role in elderly behavioral changes is unclear.
- Aging correlates with decreased brain protein phosphatase 2A (PP2A) activity in zebrafish and mice.
Purpose of the Study:
- Investigate the link between PP2A activity and age-related behavioral decline.
- Explore PP2A activators and senotherapeutics as potential interventions.
Main Methods:
- Developed a transgenic zebrafish model with reduced brain PP2A activity (ppp2r2c gene knockout).
- Assessed behavioral phenotypes and cellular senescence markers (e.g., β-galactosidase, CDKN2A/B, CDKN1A, SASP, DNA damage).
- Treated mutant fish and mouse neural cells with PP2A activators, senolytic ABT263, or gene ablation (cdkn1a, tp53).
Main Results:
- PP2A inhibition in zebrafish induced age-related behaviors and neural cell senescence.
- Treatments with PP2A activators, ABT263, or gene ablation reversed these phenotypes.
- PP2A activators demonstrated senomorphic effects in mouse neural cells.
Conclusions:
- Reduced PP2A activity drives neural cell senescence and contributes to age-related behavioral changes.
- PP2A activators possess senotherapeutic potential against brain aging's behavioral deficits.
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