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Updated: Nov 22, 2025

A Suppressor Screen for the Characterization of Genetic Links Regulating Chronological Lifespan in Saccharomyces cerevisiae
Published on: September 17, 2020
Genes and pathways involved in senescence bypass identified by functional genetic screens
Eugenia Roupakia1, Georgios S Markopoulos1, Evangelos Kolettas1
1Laboratory of Biology, School of Medicine, Faculty of Health Sciences, University of Ioannina, Ioannina, 45100, Greece; Biomedical Research Division, Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology, Ioannina, 45110, Greece.
Abstract:
Cellular senescence is a state of stable and irreversible cell cycle arrest with active metabolism, that normal cells undergo after a finite number of divisions (Hayflick limit). Senescence can be triggered by intrinsic and/or extrinsic stimuli including telomere shortening at the end of a cell's lifespan (telomere-initiated senescence) and in response to oxidative, genotoxic or oncogenic stresses (stress-induced premature senescence). Several effector mechanisms have been proposed to explain senescence programmes in diploid cells, including the induction of DNA damage responses, a senescence-associated secretory phenotype and epigenetic changes. Senescent cells display senescence-associated-β-galactosidase activity and undergo chromatin remodeling resulting in heterochromatinisation. Senescence is established by the pRb and p53 tumour suppressor networks. Senescence has been detected in in vitro cellular settings and in premalignant, but not malignant lesions in mice and humans expressing mutant oncogenes. Despite oncogene-induced senescence, which is believed to be a cancer initiating barrier and other tumour suppressive mechanisms, benign cancers may still develop into malignancies by bypassing senescence. Here, we summarise the functional genetic screens that have identified genes, uncovered pathways and characterised mechanisms involved in senescence evasion. These include cell cycle regulators and tumour suppressor pathways, DNA damage response pathways, epigenetic regulators, SASP components and noncoding RNAs.
Insights
Cellular senescence, a cell cycle arrest, acts as a tumor suppressor. Understanding how cells evade senescence is crucial for cancer development and treatment strategies.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Cellular senescence is a stable cell cycle arrest occurring after finite divisions or due to stress.
- Senescence involves DNA damage responses, a secretory phenotype, and epigenetic changes, regulated by pRb and p53 networks.
- While senescence acts as a tumor suppressive mechanism, cancer can develop by bypassing it.
Purpose of the Study:
- To summarize functional genetic screens that identify genes, pathways, and mechanisms involved in senescence evasion.
- To elucidate how benign cancers progress to malignancies by overcoming senescence.
Main Methods:
- Review of functional genetic screens.
- Analysis of identified genes, pathways, and mechanisms related to senescence evasion.
Main Results:
- Functional genetic screens have identified key players in senescence evasion.
- These include cell cycle regulators, tumor suppressor pathways, DNA damage response pathways, epigenetic regulators, senescence-associated secretory phenotype (SASP) components, and noncoding RNAs.
Conclusions:
- Understanding senescence evasion mechanisms is critical for cancer research.
- Targeting these pathways could offer new therapeutic strategies against cancer progression.
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