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Identification of Intracellular Signaling Events Induced in Viable Cells by Interaction with Neighboring Cells Undergoing Apoptotic Cell Death
Published on: December 27, 2016
Basal cancer cell survival involves JNK2 suppression of a novel JNK1/c-Jun/Bcl-3 apoptotic network
Shafiq Uddin Ahmed1, Jo Milner
1YCR P53 Research Unit, Department of Biology, University of York, York, United Kingdom.
Background:
The regulation of apoptosis under basal (non-stress) conditions is crucial for normal mammalian development and also for normal cellular turnover in different tissues throughout life. Deficient regulation of basal apoptosis, or its perturbation, can result in impaired development and/or disease states including cancer. In contrast to stress-induced apoptosis the regulation of apoptosis under basal conditions is poorly understood. To address this issue we have compared basal- and stress-induced apoptosis in human epithelial cells of normal and cancerous origins. For this purpose we focussed our study on the opposing pro-apoptotic JNK/anti-apoptotic NFkappaB pathways.
Methodology/Principal Findings:
Combinatorial RNAi plus gene knockout were employed to access and map basal regulatory pathways of apoptosis. Follow-on, in-depth analyses included exogenous expression of phosphorylation mutants and chromatin immunoprecipitation. We demonstrate that basal apoptosis is constitutively suppressed by JNK2 in a range of human cancer cell lines. This effect was not observed in non-cancer cells. Silencing JNK2 by RNAi resulted in JNK1-dependent apoptosis of cancer cells via up-regulation of the AP-1 factor c-Jun. Unexpectedly we discovered that JNK1 and c-Jun promote basal apoptosis in the absence of "activating phosphorylations" typically induced by stress. Hypo-phosphorylated c-Jun accumulated to high levels following JNK2 silencing, auto-regulated its own expression and suppressed expression of Bcl-3, an unusual IkappaB protein and regulator of NFkappaB. Basal apoptosis was mediated by components of the TNFalpha response pathway but was mechanistically distinct from TNFalpha-induced apoptosis.
Conclusions/Significance:
Our results demonstrate that mechanistically distinct pathways operate to regulate apoptosis in mammalian cells under basal (physiological) versus stress-induced conditions. We also describe a novel apoptotic network which governs the basal survival of cancer cells. Such information is crucial for understanding normal cellular turnover during mammalian development and subsequently throughout life. This information also opens new avenues for therapeutic intervention in human proliferative disease states including cancer.
Insights
Basal apoptosis is suppressed by JNK2 in cancer cells, unlike normal cells. Silencing JNK2 triggers JNK1-dependent cancer cell death, revealing a novel survival pathway in cancer.
Area of Science:
- Cell biology
- Molecular biology
- Cancer research
Background:
- Apoptosis regulation is vital for development and tissue homeostasis.
- Dysregulated apoptosis contributes to diseases like cancer.
- Basal apoptosis regulation is poorly understood compared to stress-induced apoptosis.
Purpose of the Study:
- Compare basal and stress-induced apoptosis in normal and cancerous human epithelial cells.
- Investigate the roles of JNK and NFkappaB pathways in basal apoptosis regulation.
Main Methods:
- Utilized combinatorial RNA interference (RNAi) and gene knockout.
- Performed analyses including exogenous expression of phosphorylation mutants and chromatin immunoprecipitation.
Main Results:
- JNK2 constitutively suppresses basal apoptosis in cancer cells, but not normal cells.
- JNK2 silencing induces JNK1-dependent apoptosis in cancer cells via c-Jun.
- JNK1 and c-Jun promote basal apoptosis independently of typical stress-induced phosphorylations.
- A novel apoptotic network regulating basal cancer cell survival was identified.
Conclusions:
- Distinct pathways regulate basal versus stress-induced apoptosis.
- A novel network governs basal cancer cell survival, offering therapeutic targets.
- Understanding these pathways is crucial for development, cellular turnover, and cancer treatment.
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