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Oncogenic Activity and Sorafenib Sensitivity of ARAF p.S214C Mutation in Lung Cancer
Carol Lee1, Weixue Mu1, Xi July Chen1
1School of Biomedical Sciences, The Chinese University of Hong Kong, Hong Kong.
Abstract:
Background/Objectives: RAF pathway aberrations are one of the hallmarks of lung cancer. Sorafenib is a multi-kinase inhibitor targeting the RAF pathway and is FDA-approved for several cancers, yet its efficacy in lung cancer is controversial. Previous clinical research showed that a ARAF p.S214C mutation exhibited exceptional responsiveness to sorafenib in lung adenocarcinoma. Methods: Considering this promising clinical potential, the oncogenic potential and sorafenib response of the ARAF p.S214C mutation were investigated using lung cancer models. ARAF p.S214C mutant, ARAF wild-type (WT), and EGFP control genes were ectopically expressed in lung adenocarcinoma cell lines retroviral transduction. In vitro and in vivo sorafenib sensitivity studies were performed, followed by transcriptomics and proteomics analyses. Results: Compared to the ARAF-WT and EGFP-engineered cells, the ARAF p.S214C-engineered cells activated Raf-MEK-ERK signaling and exhibited enhanced oncogenic potential in terms of in vitro cell proliferation, colony and spheroid formation, migration, and invasion abilities, as well as in vivo tumorigenicity. The ARAF p.S214C-engineered cells also displayed heightened sensitivity to sorafenib in vitro and in vivo. RNA sequencing and reverse-phase protein array analyses demonstrated elevated expression of genes and proteins associated with tumor aggressiveness in the ARAF p.S214C mutants, and its sorafenib sensitivity was likely moderated through inhibition of the cell cycle and DNA replication. The ERK and PI3K signaling pathways were also significantly deregulated in the ARAF p.S214C mutants regardless of sorafenib treatment. Conclusions: This study demonstrates the oncogenicity and sorafenib sensitivity of the ARAF p.S214C mutation in lung cancer cells, which may serve as a biomarker for predicting the sorafenib response in lung cancer patients. Importantly, investigating the gene-drug sensitivity pairs in clinically exceptional responders may guide and accelerate personalized cancer therapies based on specific tumor mutations.
Insights
A specific BRAF gene mutation (ARAF p.S214C) drives lung cancer growth and increases sensitivity to the drug sorafenib. This finding could help predict patient response to targeted cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- RAF pathway aberrations are key in lung cancer development.
- Sorafenib, a RAF pathway inhibitor, has controversial efficacy in lung cancer.
- A specific BRAF mutation (ARAF p.S214C) showed exceptional response to sorafenib in prior studies.
Purpose of the Study:
- To investigate the oncogenic potential of the ARAF p.S214C mutation.
- To evaluate the sensitivity of lung cancer models with this mutation to sorafenib.
- To explore the molecular mechanisms underlying the mutation's effects and drug response.
Main Methods:
- Engineered lung adenocarcinoma cell lines with ARAF p.S214C, wild-type ARAF, or EGFP control.
- Conducted in vitro and in vivo sorafenib sensitivity assays.
- Performed transcriptomics and proteomics analyses to identify molecular changes.
Main Results:
- ARAF p.S214C mutation enhanced lung cancer cell proliferation, migration, invasion, and tumorigenicity.
- Engineered cells showed increased sensitivity to sorafenib both in vitro and in vivo.
- Molecular analyses revealed dysregulation of ERK, PI3K, cell cycle, and DNA replication pathways.
Conclusions:
- The ARAF p.S214C mutation confers oncogenicity and sorafenib sensitivity in lung cancer.
- This mutation may serve as a predictive biomarker for sorafenib treatment in lung cancer patients.
- Studying gene-drug interactions in exceptional responders can advance personalized cancer therapy.
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