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Updated: Jul 9, 2025

Induction and Validation of Cellular Senescence in Primary Human Cells
Published on: June 20, 2018
Understanding cellular senescence: pathways involved, therapeutics and longevity aiding
Ashish Kumar1, Kavitha Thirumurugan1
1Pearl Research Park, School of Biosciences and Technology, Vellore Institute of Technology, Vellore, India.
Abstract:
A normal somatic cell undergoes cycles of finite cellular divisions. The presence of surveillance checkpoints arrests cell division in response to stress inducers: oxidative stress from excess free radicals, oncogene-induced abnormalities, genotoxic stress, and telomere attrition. When facing such stress when undergoing these damages, there is a brief pause in the cell cycle to enable repair mechanisms. Also, the nature of stress determines whether the cell goes for repair or permanent arrest. As the cells experience transient or permanent stress, they subsequently choose the quiescence or senescence stage, respectively. Quiescence is an essential stage that allows the arrested/damaged cells to go through appropriate repair mechanisms and then revert to the mainstream cell cycle. However, senescent cells are irreversible and accumulate with age, resulting in inflammation and various age-related disorders. In this review, we focus on senescence-associated pathways and therapeutics understanding cellular senescence as a cascade that leads to aging, while discussing the recent details on the molecular pathways involved in regulating senescence and the benefits of therapeutic strategies against accumulated senescent cells and their secretions.
Insights
Cellular senescence, an irreversible cell cycle arrest, accumulates with age, driving inflammation and age-related diseases. This review explores senescence pathways and therapeutic strategies targeting senescent cells for healthier aging.
Area of Science:
- Cellular Biology
- Gerontology
- Molecular Medicine
Background:
- Normal somatic cells have finite divisions, regulated by surveillance checkpoints.
- Stress inducers like oxidative stress and telomere attrition trigger cell cycle arrest for repair.
- Cellular stress leads to either reversible quiescence or irreversible senescence.
Purpose of the Study:
- To review senescence-associated pathways.
- To understand cellular senescence as a driver of aging.
- To discuss therapeutic strategies targeting senescent cells.
Main Methods:
- Literature review focusing on molecular pathways of senescence.
- Analysis of senescence-associated secretory phenotype (SASP).
- Examination of therapeutic interventions for senescent cell clearance.
Main Results:
- Senescence is an irreversible process accumulating with age.
- Accumulated senescent cells contribute to inflammation and age-related disorders.
- Targeting senescent cells and their secretions shows therapeutic potential.
Conclusions:
- Cellular senescence is a key mechanism in aging.
- Understanding senescence pathways is crucial for developing anti-aging therapies.
- Therapeutic strategies aimed at senescent cells offer promise for mitigating age-related diseases.
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