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Published on: September 20, 2016
Integrative genomic analyses identify BRF2 as a novel lineage-specific oncogene in lung squamous cell carcinoma
William W Lockwood1, Raj Chari, Bradley P Coe
1Department of Cancer Genetics and Developmental Biology, British Columbia Cancer Research Centre, Vancouver, British Columbia, Canada. wlockwood@bccrc.ca
Background:
Traditionally, non-small cell lung cancer is treated as a single disease entity in terms of systemic therapy. Emerging evidence suggests the major subtypes--adenocarcinoma (AC) and squamous cell carcinoma (SqCC)--respond differently to therapy. Identification of the molecular differences between these tumor types will have a significant impact in designing novel therapies that can improve the treatment outcome.
Methods And Findings:
We used an integrative genomics approach, combing high-resolution comparative genomic hybridization and gene expression microarray profiles, to compare AC and SqCC tumors in order to uncover alterations at the DNA level, with corresponding gene transcription changes, which are selected for during development of lung cancer subtypes. Through the analysis of multiple independent cohorts of clinical tumor samples (>330), normal lung tissues and bronchial epithelial cells obtained by bronchial brushing in smokers without lung cancer, we identified the overexpression of BRF2, a gene on Chromosome 8p12, which is specific for development of SqCC of lung. Genetic activation of BRF2, which encodes a RNA polymerase III (Pol III) transcription initiation factor, was found to be associated with increased expression of small nuclear RNAs (snRNAs) that are involved in processes essential for cell growth, such as RNA splicing. Ectopic expression of BRF2 in human bronchial epithelial cells induced a transformed phenotype and demonstrates downstream oncogenic effects, whereas RNA interference (RNAi)-mediated knockdown suppressed growth and colony formation of SqCC cells overexpressing BRF2, but not AC cells. Frequent activation of BRF2 in >35% preinvasive bronchial carcinoma in situ, as well as in dysplastic lesions, provides evidence that BRF2 expression is an early event in cancer development of this cell lineage.
Conclusions:
This is the first study, to our knowledge, to show that the focal amplification of a gene in Chromosome 8p12, plays a key role in squamous cell lineage specificity of the disease. Our data suggest that genetic activation of BRF2 represents a unique mechanism of SqCC lung tumorigenesis through the increase of Pol III-mediated transcription. It can serve as a marker for lung SqCC and may provide a novel target for therapy. Please see later in the article for the Editors' Summary.
Insights
Researchers identified BRF2 gene amplification as a key driver in squamous cell carcinoma (SqCC) of the lung. This discovery offers a potential biomarker and therapeutic target for SqCC, improving lung cancer treatment strategies.
Area of Science:
- Genomics
- Molecular Biology
- Oncology
Background:
- Non-small cell lung cancer (NSCLC) subtypes, adenocarcinoma (AC) and squamous cell carcinoma (SqCC), exhibit differential responses to systemic therapy.
- Identifying molecular distinctions between AC and SqCC is crucial for developing targeted therapies and improving patient outcomes.
Purpose of the Study:
- To uncover DNA-level alterations and corresponding gene transcription changes driving lung cancer subtype development.
- To identify molecular differences between AC and SqCC to inform novel therapeutic strategies.
Main Methods:
- Integrative genomics approach combining comparative genomic hybridization and gene expression microarrays.
- Analysis of over 330 clinical NSCLC tumor samples, normal lung tissues, and bronchial epithelial cells from smokers.
Main Results:
- Identified overexpression of the BRF2 gene (Chromosome 8p12) specifically in SqCC tumors.
- Genetic activation of BRF2, encoding a transcription initiation factor, correlated with increased small nuclear RNA (snRNA) expression, essential for cell growth.
- BRF2 ectopic expression induced a transformed phenotype in bronchial cells, while RNA interference suppressed SqCC cell growth, not AC cell growth.
- BRF2 activation was observed in over 35% of preinvasive bronchial lesions, indicating an early role in SqCC development.
Conclusions:
- Focal amplification of BRF2 on Chromosome 8p12 is a key factor in the squamous cell lineage specificity of lung cancer.
- BRF2 activation drives SqCC tumorigenesis via increased RNA polymerase III-mediated transcription.
- BRF2 serves as a potential biomarker and therapeutic target for lung SqCC.
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