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SA-β-Galactosidase-Based Screening Assay for the Identification of Senotherapeutic Drugs
Published on: June 28, 2019
The Achilles' heel of senescent cells: from transcriptome to senolytic drugs
Yi Zhu1, Tamara Tchkonia1, Tamar Pirtskhalava1
1Robert and Arlene Kogod Center on Aging, Mayo Clinic, Rochester, MN, USA.
Abstract:
The healthspan of mice is enhanced by killing senescent cells using a transgenic suicide gene. Achieving the same using small molecules would have a tremendous impact on quality of life and the burden of age-related chronic diseases. Here, we describe the rationale for identification and validation of a new class of drugs termed senolytics, which selectively kill senescent cells. By transcript analysis, we discovered increased expression of pro-survival networks in senescent cells, consistent with their established resistance to apoptosis. Using siRNA to silence expression of key nodes of this network, including ephrins (EFNB1 or 3), PI3Kδ, p21, BCL-xL, or plasminogen-activated inhibitor-2, killed senescent cells, but not proliferating or quiescent, differentiated cells. Drugs targeting these same factors selectively killed senescent cells. Dasatinib eliminated senescent human fat cell progenitors, while quercetin was more effective against senescent human endothelial cells and mouse BM-MSCs. The combination of dasatinib and quercetin was effective in eliminating senescent MEFs. In vivo, this combination reduced senescent cell burden in chronologically aged, radiation-exposed, and progeroid Ercc1(-/Δ) mice. In old mice, cardiac function and carotid vascular reactivity were improved 5 days after a single dose. Following irradiation of one limb in mice, a single dose led to improved exercise capacity for at least 7 months following drug treatment. Periodic drug administration extended healthspan in Ercc1(-/∆) mice, delaying age-related symptoms and pathology, osteoporosis, and loss of intervertebral disk proteoglycans. These results demonstrate the feasibility of selectively ablating senescent cells and the efficacy of senolytics for alleviating symptoms of frailty and extending healthspan.
Insights
Senolytics, a new class of drugs, selectively eliminate senescent cells. This approach improves healthspan and alleviates age-related conditions in mice, offering potential for human healthspan extension.
Area of Science:
- Gerontology
- Cellular Biology
- Pharmacology
Background:
- Cellular senescence contributes to age-related diseases and frailty.
- Senescent cells resist apoptosis, posing a therapeutic challenge.
- Targeting senescent cells offers a novel strategy for healthspan extension.
Purpose of the Study:
- To identify and validate a new class of drugs, senolytics, that selectively eliminate senescent cells.
- To investigate the molecular pathways enabling senescent cell survival.
- To assess the efficacy of senolytics in preclinical models of aging and disease.
Main Methods:
- Transcriptomic analysis to identify pro-survival pathways in senescent cells.
- siRNA screening to validate key survival nodes.
- Drug screening using dasatinib and quercetin against senescent cells.
- In vivo studies in aged, irradiated, and progeroid mice.
Main Results:
- Senescent cells exhibit upregulated pro-survival networks.
- Targeting ephrins, PI3Kδ, p21, BCL-xL, or PAI-2 selectively killed senescent cells.
- Dasatinib and quercetin demonstrated senolytic activity in vitro and in vivo.
- Senolytic treatment improved cardiac function, vascular reactivity, and exercise capacity in mice.
- Periodic senolytic administration extended healthspan and delayed aging phenotypes in mice.
Conclusions:
- Senolytics represent a feasible therapeutic strategy for selectively eliminating senescent cells.
- Senolytic treatment can alleviate symptoms of frailty and extend healthspan.
- Targeting cellular senescence holds significant promise for combating age-related diseases.
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