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Updated: Apr 25, 2026

Induction and Validation of Cellular Senescence in Primary Human Cells
Published on: June 20, 2018
[The role of cellular senescence in carcinogenesis and antitumor therapy]
Abstract:
Cellular senescence is the process that lead to terminal growth arrest induced by unrepairable double strand DNA damage (DSB). Moreover, activation of the oncogenes as well as inhibition of the tumor suppressor genes were shown to contribute to senescence induction and the senescent cells were identified in the premalignant lesions. Thus senescence is considered as an natural antitumor barrier that act at the early stages of cancerogenesis to stop the proliferation of transformed cells. Interestingly, the premalignant cells that escaped senescence and progress into full blown tumor cells still remain sensitive to induction of senescence, for example during chemio- or radiotherapy. Thus, induction of cancer cell senescence, similarly to apoptosis, is considered to restrain tumor growth and thus contribute to effectiveness of anticancer therapy. The senescent cells, although do not proliferate, remain viable and metabolically active. They secret a lot of cytokines, mitogens as well as enzymes degrading extracellular matrix. These factors can have opposing effect on neighboring cells, leading to senescence induction or stimulation of proliferation. Thus, senescence can act as an double edge sword that inhibit the propagation of potentially dangerous, transformed cells on one hand or induce cell division of the same cell on the other. Presently a lot of work is focused on finding new therapeutic strategies that would involve the tumor targeted senescence induction in both early late stages of cancer development. Nevertheless, the unwanted influence of the senescent cells on the microenvironment, requires careful monitoring the effects of pro-senescent therapies in each case.
Insights
Cellular senescence, a DNA damage response, acts as a natural barrier against cancer by halting transformed cell growth. However, senescent cells can also promote tumor progression, highlighting the need for careful therapeutic strategies.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Cellular senescence is a state of irreversible cell cycle arrest.
- It is primarily induced by unrepairable double-strand DNA damage (DSB).
- Senescence acts as a tumor suppressor mechanism, particularly in early cancer development.
Purpose of the Study:
- To explore the dual role of cellular senescence in cancer.
- To investigate the potential of inducing senescence as an anticancer therapy.
- To understand the impact of senescent cells on the tumor microenvironment.
Main Methods:
- Review of existing literature on cellular senescence and cancer.
- Analysis of the molecular mechanisms underlying senescence induction.
- Evaluation of the effects of senescent cells on neighboring cells and tumor progression.
Main Results:
- Senescence effectively inhibits proliferation of premalignant and malignant cells.
- Senescent cells secrete factors that can promote or inhibit tumor growth.
- Tumor cells, even advanced ones, remain sensitive to senescence induction by therapies like chemotherapy and radiotherapy.
Conclusions:
- Cellular senescence is a critical, yet complex, factor in cancer development and treatment.
- Targeting senescence for cancer therapy offers promise but requires careful consideration of its dual effects.
- Further research is needed to optimize pro-senescence therapies and manage their impact on the tumor microenvironment.
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