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Assessing metabolic stress and autophagy status in epithelial tumors
Robin Mathew1, Vassiliki Karantza-Wadsworth, Eileen White
1University of Medicine and Dentistry of New Jersey, Robert Wood Johnson Medical School, Piscataway, New Jersey, USA.
Abstract:
Autophagy is a survival mechanism activated in response to metabolic stress. In normal tissues autophagy plays a major role in energy homeostasis through catabolic self-digestion of damaged proteins and organelles. Contrary to its survival function, autophagy defects are implicated in tumorigenesis suggesting that autophagy is a tumor suppression mechanism. Although the exact mechanism of this tumor suppressor function is not known, it likely involves mitigation of cellular damage leading to chromosomal instability. The complex role of functional autophagy in tumors calls for model systems that allow the assessment of autophagy status, stress management and the impact on oncogenesis both in vitro as well as in vivo. We developed model systems that involve generation of genetically defined, isogenic and immortal epithelial cells from different tissue types that are applicable to both wild-type and mutant mice. This permits the study of tissue- as well as gene-specific tumor promoting functions. We successfully employed this strategy to generate isogenic, immortal epithelial cell lines from wild-type and mutant mice deficient in essential autophagy genes such as beclin 1 (beclin 1(+/-)) and atg5 (atg 5(-/-)). As these cell lines are amenable to further genetic manipulation, they allowed us to generate cell lines with apoptosis defects and stable expression of the autophagy marker EGFP-LC3 that facilitate in vitro and in vivo assessment of stress-mediated autophagy induction. We applied this model system to directly monitor autophagy in cells and 3D-morphogenesis in vitro as well as in tumor allografts in vivo. Using this model system we demonstrated that autophagy is a survival response in solid tumors that co-localizes with hypoxic regions, allowing tolerance to metabolic stress. Furthermore, our studies have established that autophagy also protects tumor cells from genome damage and limits cell death and inflammation as possible means to tumor suppression. Additionally these cell lines provide an efficient way to perform biochemical analyses, and high throughput screening for modulators of autophagy for potential use in cancer therapy and prevention.
Insights
Autophagy, a cellular process, acts as a survival mechanism in tumors, aiding their tolerance to metabolic stress and genome damage. This study developed novel cell models to investigate autophagy
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Autophagy is a cellular survival mechanism crucial for energy homeostasis.
- Defects in autophagy are linked to tumorigenesis, suggesting a tumor suppressor role.
- The dual role of autophagy in cancer necessitates robust model systems for study.
Purpose of the Study:
- To develop and utilize genetically defined cell models for studying autophagy in oncogenesis.
- To assess autophagy's role in tumor cell survival under metabolic stress.
- To investigate autophagy's impact on genome stability and tumor suppression.
Main Methods:
- Generation of isogenic, immortal epithelial cell lines from wild-type and autophagy-deficient mice (beclin 1(+/-), atg5(-/-)).
- Genetic manipulation to create cell lines with apoptosis defects and stable EGFP-LC3 expression for autophagy monitoring.
- In vitro (cell culture, 3D-morphogenesis) and in vivo (tumor allografts) assessment of autophagy.
Main Results:
- Autophagy functions as a survival response in solid tumors, particularly in hypoxic regions.
- Autophagy promotes tolerance to metabolic stress within tumors.
- Autophagy protects tumor cells from genome damage, limiting cell death and inflammation.
Conclusions:
- Autophagy plays a complex, context-dependent role in cancer, acting as both a survival mechanism and a potential tumor suppressor.
- The developed cell models are effective for studying autophagy in cancer and for high-throughput screening of autophagy modulators.
- Findings support exploring autophagy modulators for cancer therapy and prevention.
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