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Requirement of the NF-kappaB subunit p65/RelA for K-Ras-induced lung tumorigenesis
Daniela S Bassères1, Aaron Ebbs, Elena Levantini
1Lineberger Comprehensive Cancer Center and Department of Biology, University of North Carolina, Chapel Hill, North Carolina, USA.
Abstract:
K-Ras-induced lung cancer is a very common disease, for which there are currently no effective therapies. Because therapy directly targeting the activity of oncogenic Ras has been unsuccessful, a different approach for novel therapy design is to identify critical Ras downstream oncogenic targets. Given that oncogenic Ras proteins activate the transcription factor NF-kappaB, and the importance of NF-kappaB in oncogenesis, we hypothesized that NF-kappaB would be an important K-Ras target in lung cancer. To address this hypothesis, we generated a NF-kappaB-EGFP reporter mouse model of K-Ras-induced lung cancer and determined that K-Ras activates NF-kappaB in lung tumors in situ. Furthermore, a mouse model was generated where activation of oncogenic K-Ras in lung cells was coupled with inactivation of the NF-kappaB subunit p65/RelA. In this model, deletion of p65/RelA reduces the number of K-Ras-induced lung tumors both in the presence and in the absence of the tumor suppressor p53. Lung tumors with loss of p65/RelA have higher numbers of apoptotic cells, reduced spread, and lower grade. Using lung cell lines expressing oncogenic K-Ras, we show that NF-kappaB is activated in these cells in a K-Ras-dependent manner and that NF-kappaB activation by K-Ras requires inhibitor of kappaB kinase beta (IKKbeta) kinase activity. Taken together, these results show the importance of the NF-kappaB subunit p65/RelA in K-Ras-induced lung transformation and identify IKKbeta as a potential therapeutic target for K-Ras-induced lung cancer.
Insights
K-Ras lung cancer therapy is lacking. This study shows the NF-kappaB subunit p65/RelA is crucial for K-Ras-driven lung tumors, identifying IKKbeta as a potential therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- K-Ras-induced lung cancer lacks effective therapies.
- Targeting oncogenic Ras directly has proven unsuccessful.
- Identifying critical Ras downstream targets is key for novel therapy design.
Purpose of the Study:
- To investigate the role of NF-kappaB as a K-Ras target in lung cancer.
- To determine if NF-kappaB activation is essential for K-Ras-induced lung tumorigenesis.
- To identify potential therapeutic targets within the NF-kappaB pathway.
Main Methods:
- Generated NF-kappaB-EGFP reporter mouse models for K-Ras-induced lung cancer.
- Created mouse models with K-Ras activation and p65/RelA inactivation.
- Utilized lung cancer cell lines expressing oncogenic K-Ras.
- Assessed tumor number, apoptosis, spread, and grade.
Main Results:
- K-Ras activates NF-kappaB in lung tumors.
- Deletion of p65/RelA significantly reduced K-Ras-induced lung tumor formation.
- Loss of p65/RelA led to increased apoptosis, reduced tumor spread, and lower tumor grade.
- NF-kappaB activation by K-Ras requires IKKbeta kinase activity.
Conclusions:
- The NF-kappaB subunit p65/RelA plays a critical role in K-Ras-induced lung cancer.
- Inhibitor of kappaB kinase beta (IKKbeta) is a potential therapeutic target for K-Ras-induced lung cancer.
- Targeting the NF-kappaB pathway offers a promising strategy for treating K-Ras-driven lung cancer.
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