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An Orthotopic Mouse Model of Anaplastic Thyroid Carcinoma
Published on: April 17, 2013
Targeting Super-Enhancer-Driven Oncogenic Transcription by CDK7 Inhibition in Anaplastic Thyroid Carcinoma
Xinyi Cao1, Lin Dang1, Xiangqian Zheng2
11 2011 Collaborative Innovation Center of Tianjin for Medical Epigenetics, Tianjin Key Laboratory of Medical Epigenetics, Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences; Tianjin Key Laboratory of Medical Epigenetics, Department of Pharmacology, School of Basic Medical Sciences; Tianjin Medical University, Tianjin, P.R. China.
Abstract:
Anaplastic thyroid carcinoma (ATC) is one of the most aggressive malignancies, with no effective treatment currently available. The molecular mechanisms of ATC carcinogenesis remain poorly understood. The objective of this study was to investigate the mechanisms and functions of super-enhancer (SE)-driven oncogenic transcriptional addiction in the progression of ATC and identify new drug targets for ATC treatments. High-throughput chemical screening was performed to identify new drugs inhibiting ATC cell growth. Cell viability assay, colony formation analysis, cell-cycle analysis, and animal study were used to examine the effects of drug treatments on ATC progression. Chromatin immunoprecipitation sequencing was conducted to establish a SE landscape of ATC. Integrative analysis of RNA sequencing, chromatin immunoprecipitation sequencing, and CRISPR/Cas9-mediated gene editing was used to identify THZ1 target genes. Drug combination analysis was performed to assess drug synergy. Patient samples were analyzed to evaluate candidate biomarkers of prognosis in ATC. THZ1, a covalent inhibitor of cyclin-dependent kinase 7 (CDK7), was identified as a potent anti-ATC compound by high-throughput chemical screening. ATC cells, but not papillary thyroid carcinoma cells, are exceptionally sensitive to CDK7 inhibition. An integrative analysis of both gene expression profiles and SE features revealed that the SE-mediated oncogenic transcriptional amplification mediates the vulnerability of ATC cells to THZ1 treatment. Combining this integrative analysis with functional assays led to the discovery of a number of novel cancer genes of ATC, including PPP1R15A, SMG9, and KLF2. Inhibition of PPP1R15A with Guanabenz or Sephin1 greatly suppresses ATC growth. Significantly, the expression level of PPP1R15A is correlated with CDK7 expression in ATC tissue samples. Elevated expression of PPP1R15A and CDK7 are both associated with poor clinical prognosis in ATC patients. Importantly, CDK7 or PPP1R15A inhibition sensitizes ATC cells to conventional chemotherapy. Taken together, these findings demonstrate transcriptional addiction in ATC pathobiology and identify CDK7 and PPP1R15A as potential biomarkers and therapeutic targets for ATC.
Insights
Anaplastic thyroid carcinoma (ATC) cells exhibit transcriptional addiction, making them vulnerable to CDK7 inhibition. Targeting CDK7 or PPP1R15A offers new therapeutic strategies and biomarkers for aggressive ATC.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Anaplastic thyroid carcinoma (ATC) is a highly aggressive malignancy with limited treatment options.
- The molecular drivers of ATC progression are not well understood.
- Super-enhancer (SE)-driven transcriptional addiction is implicated in cancer, but its role in ATC is unclear.
Purpose of the Study:
- To investigate SE-driven oncogenic transcriptional addiction in ATC.
- To identify novel therapeutic targets and drugs for ATC treatment.
- To explore the prognostic significance of identified targets in ATC patients.
Main Methods:
- High-throughput chemical screening identified potential drug candidates.
- Cell viability, colony formation, and cell-cycle assays assessed drug efficacy.
- Chromatin immunoprecipitation sequencing (ChIP-seq) mapped the SE landscape in ATC.
- Integrative analysis of RNA-seq, ChIP-seq, and CRISPR/Cas9 identified THZ1 target genes.
- Patient samples were analyzed for biomarker validation.
Main Results:
- THZ1, a CDK7 inhibitor, potently inhibited ATC cell growth.
- ATC cells showed unique sensitivity to CDK7 inhibition compared to papillary thyroid carcinoma cells.
- SE-mediated transcriptional amplification underlies ATC cell vulnerability to THZ1.
- Novel ATC genes, including PPP1R15A, SMG9, and KLF2, were identified.
- Inhibition of PPP1R15A suppressed ATC growth and correlated with CDK7 expression.
- Elevated CDK7 and PPP1R15A expression predicted poor prognosis in ATC patients.
- CDK7 or PPP1R15A inhibition enhanced sensitivity to conventional chemotherapy.
Conclusions:
- ATC exhibits transcriptional addiction, presenting a therapeutic vulnerability.
- CDK7 and PPP1R15A are identified as key drivers and potential therapeutic targets in ATC.
- CDK7 and PPP1R15A serve as promising prognostic biomarkers for ATC.
- Targeting CDK7 or PPP1R15A, alone or in combination with chemotherapy, offers a new treatment strategy for ATC.
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