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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Defective autophagy control by the p53 rheostat in cancer
Lorenzo Galluzzi1, Eugenia Morselli, Oliver Kepp
1INSERM, U848, Institut Gustave Roussy, and Université Paris Sud-XI, Villejuif, France.
Abstract:
Autophagy is a finely regulated, lysosomal catabolic pathway that contributes to the turnover of long-lived proteins and to the elimination of old/damaged organelles. Autophagy exerts bona fide oncosuppressive functions by: (1) limiting chromosomal instability; (2) reducing potentially mutagenic oxidative stress; and (3) restraining intratumoral necrosis and local inflammation. Defective autophagy constitutes a hallmark of cancer cells together with: (1) provision of autonomous growth signals;, (2) insensitivity to antiproliferative stimuli; (3) disabled apoptosis; (4) limitless replication; (5) production of angiogenic factors; (6) tissue invasion with metastasis; (7) avoidance of the immune response; and (8) enhanced anabolism. p53 is the best-known human oncosuppressor protein, and its genetic/epigenetic inactivation has been observed in more than 50% of all human cancers. p53 mostly mediates tumor suppression by transactivating pro-apoptotic and cell cycle arresting genes, but also by favoring mitochondrial apoptosis in a transcription-independent fashion, by modulating metabolic circuitries and by regulating autophagy. p53 mutations (or epigenetic changes) that simultaneously abolish its pro-apoptotic and autophagy-inhibitory functions behave as "multi-hit" events, as opposed to "single-hit" mutations that only affect the classical (pro-apoptotic and/or cell cycle-arresting) functions of the p53 system. We speculate that, in this latter case, additional genetic/epigenetic events resulting in disabled autophagy are likely to contribute to accelerated oncogenesis.
Insights
Autophagy, a cellular recycling process, normally suppresses tumors. When autophagy is defective, cancer cells can grow and spread more aggressively, especially when the p53 tumor suppressor is also inactivated.
Area of Science:
- Molecular Biology
- Cellular Biology
- Oncology
Background:
- Autophagy is a critical lysosomal pathway for cellular maintenance and waste removal.
- Autophagy plays a significant role in tumor suppression by preventing genomic instability and inflammation.
- Defective autophagy is a recognized hallmark of cancer, alongside uncontrolled growth and apoptosis evasion.
Purpose of the Study:
- To elucidate the role of autophagy in cancer suppression.
- To investigate the interplay between p53 function and autophagy regulation in oncogenesis.
- To understand how combined defects in p53 and autophagy accelerate cancer development.
Main Methods:
- Review of existing literature on autophagy, cancer hallmarks, and p53.
- Analysis of genetic and epigenetic alterations affecting p53 and autophagy.
- Conceptual framework development linking p53 inactivation, autophagy dysfunction, and oncogenesis.
Main Results:
- Autophagy's oncosuppressive functions include limiting chromosomal instability, oxidative stress, and inflammation.
- Cancer cells exhibit defective autophagy alongside other hallmarks like autonomous growth and metastasis.
- p53 inactivation, common in cancers, impairs both pro-apoptotic and autophagy-regulatory functions.
Conclusions:
- Simultaneous loss of p53's pro-apoptotic and autophagy-inhibitory roles represents a 'multi-hit' event in cancer.
- Mutations affecting only p53's classical functions may require additional defects in autophagy for rapid oncogenesis.
- Targeting autophagy may offer therapeutic strategies for cancers with compromised p53 function.
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