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Generation of High Quality Chromatin Immunoprecipitation DNA Template for High-throughput Sequencing ChIP-seq
Published on: April 19, 2013
SETD2 regulates chromatin accessibility and transcription to suppress lung tumorigenesis
Yuchen Xie1,2, Merve Sahin3,4, Toru Wakamatsu1
1Human Oncology and Pathogenesis Program, Memorial Sloan Kettering Cancer Center (MSKCC), New York, New York, USA.
Abstract:
SETD2, a H3K36 trimethyltransferase, is the most frequently mutated epigenetic modifier in lung adenocarcinoma, with a mutation frequency of approximately 9%. However, how SETD2 loss of function promotes tumorigenesis remains unclear. Using conditional Setd2-KO mice, we demonstrated that Setd2 deficiency accelerated the initiation of KrasG12D-driven lung tumorigenesis, increased tumor burden, and significantly reduced mouse survival. An integrated chromatin accessibility and transcriptome analysis revealed a potentially novel tumor suppressor model of SETD2 in which SETD2 loss activates intronic enhancers to drive oncogenic transcriptional output, including the KRAS transcriptional signature and PRC2-repressed targets, through regulation of chromatin accessibility and histone chaperone recruitment. Importantly, SETD2 loss sensitized KRAS-mutant lung cancer to inhibition of histone chaperones, the FACT complex, or transcriptional elongation both in vitro and in vivo. Overall, our studies not only provide insight into how SETD2 loss shapes the epigenetic and transcriptional landscape to promote tumorigenesis, but they also identify potential therapeutic strategies for SETD2 mutant cancers.
Insights
Loss of SETD2, a key epigenetic modifier, accelerates lung cancer growth by altering gene expression. This study reveals SETD2's tumor suppressor role and identifies new therapeutic targets for SETD2-mutant lung adenocarcinoma.
Area of Science:
- Epigenetics
- Molecular Oncology
- Cancer Genomics
Background:
- SETD2 is frequently mutated in lung adenocarcinoma.
- The precise role of SETD2 loss in tumorigenesis is not fully understood.
Purpose of the Study:
- To elucidate the functional consequences of SETD2 loss in lung cancer.
- To identify therapeutic vulnerabilities associated with SETD2 mutations.
Main Methods:
- Conditional Setd2-knockout mouse models for lung tumorigenesis.
- Integrated chromatin accessibility and transcriptome analysis.
- In vitro and in vivo drug sensitivity assays.
Main Results:
- SETD2 deficiency accelerates KrasG12D-driven lung tumor initiation and progression.
- SETD2 loss leads to activation of intronic enhancers, driving oncogenic transcription.
- SETD2-mutant lung cancer exhibits sensitivity to FACT complex and transcriptional elongation inhibitors.
Conclusions:
- SETD2 functions as a tumor suppressor in lung adenocarcinoma.
- SETD2 loss promotes tumorigenesis by dysregulating chromatin accessibility and gene expression.
- Targeting histone chaperones or transcriptional elongation presents a potential therapeutic strategy for SETD2-mutant lung cancers.
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