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Published on: November 27, 2016
Oncogenic Ras triggers cell suicide through the activation of a caspase-independent cell death program in human
1Biophysics Division, National Cancer Center Research Institute, Tokyo, Japan.
Abstract:
To prevent neoplasia, cells of multicellular organisms activate cellular disposal programs such as apoptosis in response to deregulated oncogene expression, making the suppression of such programs an essential step for potentially neoplastic cells to become established as clinically relevant tumors. Since the mutation of ras proto-oncogenes, the most frequently mutated proto-oncogenes in human tumors, is very rare in some tumor types such as glioblastomas and gastric cancers, we hypothesized that mutated ras genes might activate a cell death program that cannot be overcome by these tumor types. Here we show that the expression of oncogenically mutated ras gene induces cellular degeneration accompanied by cytoplasmic vacuoles in human glioma and gastric cancer cell lines. Cells dying as a result of oncogenic Ras expression had relatively well-preserved nuclei that were negative for TUNEL staining. An immunocytochemical analysis demonstrated that the cytoplasmic vacuoles are derived mainly from lysosomes. This oncogenic Ras-induced cell death occurred in the absence of caspase activation, and was not inhibited by the overexpression of anti-apoptotic Bcl-2 protein. These observations suggested that oncogenic Ras-induced cell death is most consistent with a type of programmed cell death designated 'type 2 physiological cell death' or 'autophagic degeneration', and that this cell death is regulated by a molecular mechanism distinct from that of apoptosis. Our findings suggest a possible role for this non-apoptotic cell death in the prevention of neoplasia, and the activation of the non-apoptotic cell death program may become a potential cancer therapy complementing apoptosis-based therapies. In addition, the approach used in this study may be a valuable way to find genetically-regulated cell suicide programs that cannot be overcome by particular tumor types.
Insights
Oncogenic Ras mutations trigger a non-apoptotic cell death pathway, distinct from apoptosis, characterized by lysosomal vacuoles. This discovery offers new avenues for cancer therapy by targeting this unique cell death mechanism.
Area of Science:
- Cell Biology
- Oncology
- Molecular Biology
Background:
- Multicellular organisms utilize cellular disposal programs like apoptosis to prevent neoplasia.
- Suppression of these programs is crucial for tumor development.
- Ras proto-oncogene mutations are common in human tumors, but rare in glioblastomas and gastric cancers, suggesting alternative cell death mechanisms.
Purpose of the Study:
- To investigate the mechanism of cell death induced by oncogenic Ras in tumor types where Ras mutations are rare.
- To determine if this cell death pathway is distinct from apoptosis.
- To explore the potential of this non-apoptotic pathway as a cancer therapeutic strategy.
Main Methods:
- Expression of oncogenically mutated Ras gene in human glioma and gastric cancer cell lines.
- Analysis of cell morphology, nuclear integrity (TUNEL staining), and vacuole origin (immunocytochemistry for lysosomes).
- Assessment of caspase activation and inhibition by Bcl-2 overexpression to differentiate from apoptosis.
Main Results:
- Oncogenic Ras expression induced cellular degeneration with cytoplasmic vacuoles, primarily lysosome-derived.
- Dying cells showed preserved nuclei and were TUNEL-negative, indicating non-apoptotic death.
- This cell death pathway did not involve caspase activation and was resistant to Bcl-2 overexpression, consistent with 'type 2 physiological cell death' or 'autophagic degeneration'.
Conclusions:
- Oncogenic Ras triggers a non-apoptotic programmed cell death pathway, distinct from apoptosis, in specific cancer cell types.
- This non-apoptotic cell death mechanism may play a role in preventing neoplasia.
- Targeting this Ras-induced non-apoptotic cell death pathway presents a potential complementary cancer therapy strategy.
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