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Updated: May 24, 2026

Induction and Validation of Cellular Senescence in Primary Human Cells
Published on: June 20, 2018
Cellular senescence and cancer chemotherapy resistance
Ryan R Gordon1, Peter S Nelson
1Fred Hutchinson Cancer Research Center, Seattle, WA 91809, United States.
Abstract:
Innate or acquired resistance to cancer therapeutics remains an important area of biomedical investigation that has clear ramifications for improving cancer specific death rates. Importantly, clues to key resistance mechanisms may lie in the well-orchestrated and highly conserved cellular and systemic responses to injury and stress. Many anti-neoplastic therapies typically rely on DNA damage, which engages potent DNA damage response signaling pathways that culminate in apoptosis or growth arrest at checkpoints to allow for damage repair. However, an alternative cellular response, senescence, can also be initiated when challenged with these internal/external pressures and in ideal situations acts as a self-protecting mechanism. Senescence-induction therapies are an attractive concept in that they represent a normal, highly conserved and commonly invoked tumor-suppressing response to overwhelming genotoxic stress or oncogene activation. Yet, such approaches should ensure that senescence by-pass or senescence re-emergence does not occur, as emergent cells appear to have highly drug resistant phenotypes. Further, cell non-autonomous senescence responses may contribute to therapy-resistance in certain circumstances. Here we provide an overview of mechanisms by which cellular senescence plausibly contributes to therapy resistance and concepts by which senescence responses can be influenced to improve cancer treatment outcomes.
Insights
Cellular senescence, a stress response, can paradoxically drive cancer therapy resistance. Understanding and manipulating senescence pathways is key to overcoming drug resistance and improving cancer treatment outcomes.
Area of Science:
- Biomedical Science
- Cancer Biology
- Cellular Stress Response
Background:
- Therapeutic resistance to cancer treatments is a major challenge impacting patient survival rates.
- Cellular responses to stress, including senescence, offer potential insights into resistance mechanisms.
- Many cancer therapies induce DNA damage, triggering cellular responses like apoptosis or senescence.
Purpose of the Study:
- To explore how cellular senescence contributes to resistance against cancer therapies.
- To review concepts for modulating senescence to enhance cancer treatment efficacy.
- To understand the dual role of senescence in cancer therapy.
Main Methods:
- Literature review and conceptual overview of cellular senescence.
- Analysis of DNA damage response pathways and their relation to senescence.
- Examination of senescence bypass and re-emergence phenomena.
Main Results:
- Cellular senescence can act as a tumor-suppressing mechanism but also contribute to therapy resistance.
- Emergent cells from senescence may exhibit drug-resistant phenotypes.
- Non-autonomous senescence responses can influence overall therapy resistance.
Conclusions:
- Cellular senescence plays a complex role in cancer therapy resistance.
- Targeting senescence pathways requires careful consideration to avoid promoting resistance.
- Further research into senescence modulation could lead to improved cancer treatment strategies.
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