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Selective inactivation of p53 facilitates mouse epithelial tumor progression without chromosomal instability
1Department of Biochemistry and Biophysics, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA.
Abstract:
We examined the selective pressure for, and the impact of, p53 inactivation during epithelial tumor evolution in a transgenic brain tumor model. In TgT(121) mice, cell-specific inactivation of the pRb pathway in brain choroid plexus epithelium initiates tumorigenesis and induces p53-dependent apoptosis. We previously showed that p53 deficiency accelerates tumor growth due to diminished apoptosis. Here we show that in a p53(+/-) background, slow-growing dysplastic tissue undergoes clonal progression to solid angiogenic tumors in all animals. p53 is inactivated in all progressed tumors, with loss of the wild-type allele occurring in 90% of tumors. Moreover, similar progression occurs in 38% of TgT(121)p53(+/+) mice, also with loss of at least one p53 allele and inactivation of p53. Thus, the selective pressure for p53 inactivation, likely based on its apoptotic function, is high. Yet, in all cases, p53 inactivation correlates with progression beyond apoptosis reduction, from dysplasia to solid vascularized tumors. Hence, p53 suppresses tumor progression in this tissue by multiple mechanisms. Previous studies of fibroblasts and hematopoietic cells show that p53 deficiency can be associated with chromosomal instability, a mechanism that may drive tumor progression. To determine whether genomic gains or losses are present in tumors that progress in the absence of p53, we performed comparative genomic hybridization analysis. Surprisingly, the only detectable chromosomal imbalance was partial or complete loss of chromosome 11, which harbors the p53 gene and is thus the selected event. Flow cytometry confirmed that the majority of tumor cells were diploid. These studies indicate that loss of p53 function is frequent under natural selective pressures and furthermore that p53 loss can facilitate epithelial tumor progression by a mechanism in addition to apoptosis reduction and distinct from chromosomal instability.
Insights
Selective pressure strongly favors p53 inactivation in brain tumors, accelerating progression beyond apoptosis reduction. Loss of p53 function, not chromosomal instability, drives this tumor evolution.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The p53 tumor suppressor pathway is crucial for preventing cancer.
- p53 inactivation is frequently observed in various cancers.
- Understanding p53's role in tumor evolution is vital for developing targeted therapies.
Purpose of the Study:
- To investigate the selective pressure for p53 inactivation during epithelial tumor development.
- To elucidate the impact of p53 loss on tumor progression in a transgenic mouse model.
- To determine the mechanisms by which p53 loss facilitates tumor advancement.
Main Methods:
- Utilized a transgenic mouse model (TgT(121)) with cell-specific pRb pathway inactivation in brain choroid plexus epithelium.
- Assessed tumor growth and progression in p53 heterozygous (p53(+/-)) and wild-type (p53(+/+)) backgrounds.
- Employed comparative genomic hybridization (CGH) and flow cytometry to analyze chromosomal stability and ploidy.
Main Results:
- p53 inactivation was strongly selected for during tumor progression, occurring in all analyzed tumors.
- Tumors progressed from dysplasia to solid, angiogenic masses in p53-deficient backgrounds.
- Loss of chromosome 11, containing the p53 gene, was the primary chromosomal imbalance; tumors were largely diploid.
- p53 inactivation facilitated tumor progression through mechanisms beyond apoptosis reduction and distinct from chromosomal instability.
Conclusions:
- High selective pressure exists for p53 inactivation in epithelial tumors due to its role in apoptosis.
- p53 suppresses tumor progression via multiple mechanisms, not solely through apoptosis regulation.
- p53 loss facilitates tumor advancement independent of significant chromosomal instability, suggesting novel roles in tumorigenesis.