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Updated: Nov 20, 2025

Evaluating the Effect of SASP Factors on the Proliferation of Cancer Cells Using a Comparative Analysis of Three Distinct Methodologies
Published on: September 19, 2025
The Jekyll and Hyde of Cellular Senescence in Cancer
Dilara Demirci1, Bengisu Dayanc1,2, Fatma Aybuke Mazi1,2
1Izmir Biomedicine and Genome Center, Izmir 35340, Turkey.
Abstract:
Cellular senescence is a state of stable cell cycle arrest that can be triggered in response to various insults and is characterized by distinct morphological hallmarks, gene expression profiles, and the senescence-associated secretory phenotype (SASP). Importantly, cellular senescence is a key component of normal physiology with tumor suppressive functions. In the last few decades, novel cancer treatment strategies exploiting pro-senescence therapies have attracted considerable interest. Recent insight, however, suggests that therapy-induced senescence (TIS) elicits cell-autonomous and non-cell-autonomous implications that potentially entail detrimental consequences, reflecting the Jekyll and Hyde nature of cancer cell senescence. In essence, the undesirable manifestations that generally culminate in inflammation, cancer stemness, senescence reversal, therapy resistance, and disease recurrence are dictated by the persistent accumulation of senescent cells and the SASP. Thus, mitigating these pro-tumorigenic effects by eliminating these cells or inhibiting their SASP production holds great promise for developing innovative therapeutic strategies. In this review, we describe the fundamental aspects and dynamics of cancer cell senescence and summarize the comprehensive research on the adverse outcomes of TIS. Furthermore, we underline the rationale and motivation of emerging senotherapeutic modalities surrounding the removal of senescent cells and the SASP to help maximize the overall efficacy of cancer therapies.
Insights
Cellular senescence, a cell cycle arrest, has dual roles in cancer. While tumor-suppressive, therapy-induced senescence can promote cancer recurrence via inflammation and stemness.
Area of Science:
- Oncology
- Cell Biology
- Gerontology
Background:
- Cellular senescence is a stable cell cycle arrest with tumor-suppressive roles.
- Therapy-induced senescence (TIS) in cancer presents a dual nature, offering both benefits and drawbacks.
- The senescence-associated secretory phenotype (SASP) contributes to detrimental effects.
Purpose of the Study:
- To review the fundamental aspects and dynamics of cancer cell senescence.
- To summarize adverse outcomes associated with therapy-induced senescence (TIS).
- To highlight emerging senotherapeutic strategies targeting senescent cells and SASP.
Main Methods:
- Literature review of cellular senescence in cancer.
- Analysis of the implications of therapy-induced senescence (TIS).
- Discussion of senotherapeutic approaches for cancer treatment.
Main Results:
- Cellular senescence, while initially tumor-suppressive, can promote cancer progression.
- Accumulation of senescent cells and SASP contribute to inflammation, stemness, and therapy resistance.
- TIS can lead to undesirable consequences like senescence reversal and disease recurrence.
Conclusions:
- Mitigating pro-tumorigenic effects of senescent cells and SASP is crucial for effective cancer therapy.
- Eliminating senescent cells or inhibiting SASP offers promising senotherapeutic strategies.
- Targeting senescence can enhance overall cancer treatment efficacy.
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