K-Ras-Activated Cells Can Develop into Lung Tumors When Runx3-Mediated Tumor Suppressor Pathways Are Abrogated
You-Soub Lee1,2, Ja-Yeol Lee1,2, Soo-Hyun Song1
1Department of Biochemistry, School of Medicine, Institute for Tumor Research, Chungbuk National University, Cheongju 28644, Korea.
Abstract:
K-RAS is frequently mutated in human lung adenocarcinomas (ADCs), and the p53 pathway plays a central role in cellular defense against oncogenic K-RAS mutation. However, in mouse lung cancer models, oncogenic K-RAS mutation alone can induce ADCs without p53 mutation, and loss of p53 does not have a significant impact on early K-RAS-induced lung tumorigenesis. These results raise the question of how K-RAS-activated cells evade oncogene surveillance mechanisms and develop into lung ADCs. RUNX3 plays a key role at the restriction (R)-point, which governs multiple tumor suppressor pathways including the p14ARF-p53 pathway. In this study, we found that K-RAS activation in a very limited number of cells, alone or in combination with p53 inactivation, failed to induce any pathologic lesions for up to 1 year. By contrast, when Runx3 was inactivated and K-RAS was activated by the same targeting method, lung ADCs and other tumors were rapidly induced. In a urethane-induced mouse lung tumor model that recapitulates the features of K-RAS-driven human lung tumors, Runx3 was inactivated in both adenomas (ADs) and ADCs, whereas K-RAS was activated only in ADCs. Together, these results demonstrate that the R-point-associated oncogene surveillance mechanism is abrogated by Runx3 inactivation in AD cells and these cells cannot defend against K-RAS activation, resulting in the transition from AD to ADC. Therefore, K-RAS-activated lung epithelial cells do not evade oncogene surveillance mechanisms; instead, they are selected if they occur in AD cells in which Runx3 has been inactivated.
Insights
RUNX3 inactivation, not K-RAS mutation alone, drives lung adenocarcinoma (ADC) development by disabling cellular defenses. Inactivated RUNX3 allows K-RAS-activated cells to bypass surveillance and form tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- K-RAS mutations are common in human lung adenocarcinomas (ADCs).
- The p53 pathway is crucial for defending against oncogenic K-RAS.
- Mouse models show K-RAS-induced lung tumors can develop without p53 mutations, questioning surveillance mechanisms.
Purpose of the Study:
- To investigate the role of RUNX3 in K-RAS-driven lung tumorigenesis.
- To understand how K-RAS-activated cells evade oncogene surveillance.
- To elucidate the transition from lung adenoma (AD) to ADC.
Main Methods:
- Genetic manipulation of K-RAS and RUNX3 in mouse lung cancer models.
- Analysis of tumor development following oncogene activation and tumor suppressor inactivation.
- Utilized a urethane-induced mouse lung tumor model mimicking human K-RAS-driven tumors.
Main Results:
- K-RAS activation alone or with p53 inactivation did not induce significant lesions.
- Concurrent inactivation of RUNX3 and activation of K-RAS rapidly induced lung ADCs.
- RUNX3 was inactivated in both ADs and ADCs, while K-RAS was activated only in ADCs in a urethane model.
Conclusions:
- RUNX3 inactivation abrogates the R-point-associated oncogene surveillance mechanism.
- Loss of RUNX3 function in AD cells permits K-RAS activation, leading to ADC.
- K-RAS-activated lung cells are selected for tumor formation when RUNX3 is inactivated.
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