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Genome-Wide Analysis Identifies Nuclear Factor 1C as a Novel Transcription Factor and Potential Therapeutic Target in
Vivek Shukla1, Haitao Wang2, Lyuba Varticovski3
1Thoracic Epigenetics Section, Thoracic Surgery Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland; Present Address: Division of Nonclinical Sciences (DNCS), FDA, Silver Spring, Maryland.
Introduction:
Recent insights regarding mechanisms mediating stemness, heterogeneity, and metastatic potential of lung cancers have yet to be fully translated to effective regimens for the treatment of these malignancies. This study sought to identify novel targets for lung cancer therapy.
Methods:
Transcriptomes and DNA methylomes of 14 SCLC and 10 NSCLC lines were compared with normal human small airway epithelial cells (SAECs) and induced pluripotent stem cell (iPSC) clones derived from SAEC. SCLC lines, lung iPSC (Lu-iPSC), and SAEC were further evaluated by DNase I hypersensitive site sequencing (DHS-seq). Changes in chromatin accessibility and depths of transcription factor (TF) footprints were quantified using Bivariate analysis of Genomic Footprint. Standard techniques were used to evaluate growth, tumorigenicity, and changes in transcriptomes and glucose metabolism of SCLC cells after NFIC knockdown and to evaluate NFIC expression in SCLC cells after exposure to BET inhibitors.
Results:
Considerable commonality of transcriptomes and DNA methylomes was observed between Lu-iPSC and SCLC; however, this analysis was uninformative regarding pathways unique to lung cancer. Linking results of DHS-seq to RNA sequencing enabled identification of networks not previously associated with SCLC. When combined with footprint depth, NFIC, a transcription factor not previously associated with SCLC, had the highest score of occupancy at open chromatin sites. Knockdown of NFIC impaired glucose metabolism, decreased stemness, and inhibited growth of SCLC cells in vitro and in vivo. ChIP-seq analysis identified numerous sites occupied by BRD4 in the NFIC promoter region. Knockdown of BRD4 or treatment with Bromodomain and extra-terminal domain (BET) inhibitors (BETis) markedly reduced NFIC expression in SCLC cells and SCLC PDX models. Approximately 8% of genes down-regulated by BETi treatment were repressed by NFIC knockdown in SCLC, whereas 34% of genes repressed after NFIC knockdown were also down-regulated in SCLC cells after BETi treatment.
Conclusions:
NFIC is a key TF and possible mediator of transcriptional regulation by BET family proteins in SCLC. Our findings highlight the potential of genome-wide chromatin accessibility analysis for elucidating mechanisms of pulmonary carcinogenesis and identifying novel targets for lung cancer therapy.
Insights
Nuclear Factor I C (NFIC) is a key transcription factor in small cell lung cancer (SCLC). Targeting NFIC and BET proteins offers a novel therapeutic strategy for lung cancer.
Area of Science:
- Genomics
- Cancer Biology
- Epigenetics
Background:
- Lung cancer stemness, heterogeneity, and metastasis mechanisms require better therapeutic translation.
- Identifying novel therapeutic targets for lung cancer is crucial.
Purpose of the Study:
- To identify novel therapeutic targets for lung cancer by analyzing transcriptomes and DNA methylomes.
- To investigate the role of transcription factors in small cell lung cancer (SCLC) pathogenesis.
Main Methods:
- Comparative analysis of transcriptomes and DNA methylomes in SCLC, NSCLC, and normal cells.
- DNase I hypersensitive site sequencing (DHS-seq) to assess chromatin accessibility.
- NFIC knockdown and BET inhibitor treatment to evaluate effects on SCLC cells and models.
Main Results:
- NFIC identified as a transcription factor with high occupancy at open chromatin sites in SCLC.
- NFIC knockdown inhibited SCLC cell growth, stemness, and glucose metabolism in vitro and in vivo.
- BET inhibitors and BRD4 knockdown reduced NFIC expression in SCLC models.
Conclusions:
- NFIC is a key transcription factor and potential mediator of BET protein regulation in SCLC.
- Genome-wide chromatin accessibility analysis is valuable for discovering lung cancer mechanisms and targets.
- NFIC and BET pathway inhibition represent promising therapeutic strategies for SCLC.
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