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Updated: Apr 16, 2026

Assessing Cell Viability and Death in 3D Spheroid Cultures of Cancer Cells
Published on: June 16, 2019
How cell death shapes cancer
V Labi1, M Erlacher2
1Max-Delbrück-Center for Molecular Medicine (MDC), Berlin 13125, Germany.
Abstract:
Apoptosis has been established as a mechanism of anti-cancer defense. Members of the BCL-2 family are critical mediators of apoptotic cell death in health and disease, often found to be deregulated in cancer and believed to lead to the survival of malignant clones. However, over the years, a number of studies pointed out that a model in which cell death resistance unambiguously acts as a barrier against malignant disease might be too simple. This is based on paradoxical observations made in tumor patients as well as mouse models indicating that apoptosis can indeed drive tumor formation, at least under certain circumstances. One possible explanation for this phenomenon is that apoptosis can promote proliferation critically needed to compensate for cell loss, for example, upon therapy, and to restore tissue homeostasis. However, this, at the same time, can promote tumor development by allowing expansion of selected clones. Usually, tissue resident stem/progenitor cells are a major source for repopulation, some of them potentially carrying (age-, injury- or therapy-induced) genetic aberrations deleterious for the host. Thereby, apoptosis might drive genomic instability by facilitating the emergence of pathologic clones during phases of proliferation and subsequent replication stress-associated DNA damage. Tumorigenesis initiated by repeated cell attrition and repopulation, as confirmed in different genetic models, has parallels in human cancers, exemplified in therapy-induced secondary malignancies and myelodysplastic syndromes in patients with congenital bone marrow failure syndromes. Here, we aim to review evidence in support of the oncogenic role of stress-induced apoptosis.
Insights
Stress-induced apoptosis, a key cell death pathway, can paradoxically promote cancer development. This review explores how apoptosis drives tumor formation by stimulating proliferation and genomic instability.
Area of Science:
- Oncology
- Cell Biology
- Genetics
Background:
- Apoptosis is a critical anti-cancer defense mechanism involving BCL-2 family proteins.
- Deregulation of apoptosis is common in cancer, promoting malignant clone survival.
- Emerging evidence suggests apoptosis can paradoxically drive tumor formation under certain conditions.
Purpose of the Study:
- To review evidence supporting the oncogenic role of stress-induced apoptosis.
- To explore the mechanisms by which apoptosis may promote tumorigenesis.
- To highlight the implications of apoptosis in cancer development and progression.
Main Methods:
- Literature review of studies on apoptosis and cancer.
- Analysis of paradoxical observations in tumor patients and mouse models.
- Examination of genetic models demonstrating apoptosis-driven tumorigenesis.
Main Results:
- Apoptosis can promote proliferation to restore tissue homeostasis, potentially expanding malignant clones.
- Stress-induced apoptosis may drive genomic instability, facilitating the emergence of pathologic clones.
- Tumorigenesis via repeated cell attrition and repopulation has parallels in human cancers.
Conclusions:
- The role of apoptosis in cancer is complex, with stress-induced apoptosis potentially acting as an oncogenic driver.
- Understanding this dual role is crucial for developing effective cancer therapies.
- Further research is needed to elucidate the precise mechanisms of apoptosis-driven tumorigenesis.
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