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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Selective activation of p53-mediated tumour suppression in high-grade tumours
Melissa R Junttila1, Anthony N Karnezis, Daniel Garcia
1University of California San Francisco, Department of Pathology and Helen Diller Family Comprehensive Cancer Center, San Francisco, California 94143-0502, USA.
Abstract:
Non-small cell lung carcinoma (NSCLC) is the leading cause of cancer-related death worldwide, with an overall 5-year survival rate of only 10-15%. Deregulation of the Ras pathway is a frequent hallmark of NSCLC, often through mutations that directly activate Kras. p53 is also frequently inactivated in NSCLC and, because oncogenic Ras can be a potent trigger of p53 (ref. 3), it seems likely that oncogenic Ras signalling has a major and persistent role in driving the selection against p53. Hence, pharmacological restoration of p53 is an appealing therapeutic strategy for treating this disease. Here we model the probable therapeutic impact of p53 restoration in a spontaneously evolving mouse model of NSCLC initiated by sporadic oncogenic activation of endogenous Kras. Surprisingly, p53 restoration failed to induce significant regression of established tumours, although it did result in a significant decrease in the relative proportion of high-grade tumours. This is due to selective activation of p53 only in the more aggressive tumour cells within each tumour. Such selective activation of p53 correlates with marked upregulation in Ras signal intensity and induction of the oncogenic signalling sensor p19(ARF)( )(ref. 6). Our data indicate that p53-mediated tumour suppression is triggered only when oncogenic Ras signal flux exceeds a critical threshold. Importantly, the failure of low-level oncogenic Kras to engage p53 reveals inherent limits in the capacity of p53 to restrain early tumour evolution and in the efficacy of therapeutic p53 restoration to eradicate cancers.
Insights
Restoring tumor suppressor p53 in mouse models of non-small cell lung carcinoma (NSCLC) did not shrink established tumors. However, p53 restoration reduced high-grade tumors by selectively targeting aggressive cancer cells with high Ras signaling.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Non-small cell lung carcinoma (NSCLC) is a leading cause of cancer mortality, with poor survival rates.
- Ras pathway deregulation, particularly Kras mutations, and p53 inactivation are common in NSCLC.
- Oncogenic Ras signaling can trigger p53, making p53 restoration a potential therapeutic strategy.
Purpose of the Study:
- To investigate the therapeutic impact of restoring p53 function in a mouse model of Kras-driven NSCLC.
- To understand the mechanisms underlying p53's response to oncogenic Ras signaling in established tumors.
Main Methods:
- Utilized a spontaneously evolving mouse model of NSCLC initiated by oncogenic Kras activation.
- Modeled the pharmacological restoration of p53 in established tumors.
- Analyzed tumor regression, grade, and p53 activation in relation to Ras signal intensity and p19ARF expression.
Main Results:
- p53 restoration did not cause significant regression of established NSCLC tumors.
- A significant decrease in the proportion of high-grade tumors was observed.
- Selective p53 activation occurred in aggressive tumor cells with high Ras signal flux and p19ARF induction.
- p53-mediated tumor suppression requires Ras signal flux to exceed a critical threshold.
Conclusions:
- Therapeutic p53 restoration has limitations in eradicating established NSCLC, particularly those with low-level oncogenic Kras.
- p53's capacity to restrain early tumor evolution is inherently limited.
- The efficacy of p53 restoration is dependent on the level of oncogenic Ras signaling.
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