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ASXL3 bridges BRD4 to BAP1 complex and governs enhancer activity in small cell lung cancer
Aileen Patricia Szczepanski1,2, Zibo Zhao1,2, Tori Sosnowski3
1Simpson Querrey Center for Epigenetics, Northwestern University Feinberg School of Medicine, 303 East Superior Street, Chicago, IL, 60611, USA.
Background:
Small cell lung cancer (SCLC) is a more aggressive subtype of lung cancer that often results in rapid tumor growth, early metastasis, and acquired therapeutic resistance. Consequently, such phenotypical characteristics of SCLC set limitations on viable procedural options, making it difficult to develop both screenings and effective treatments. In this study, we examine a novel mechanistic insight in SCLC cells that could potentially provide a more sensitive therapeutic alternative for SCLC patients.
Methods:
Biochemistry studies, including size exclusion chromatography, mass spectrometry, and western blot analysis, were conducted to determine the protein-protein interaction between additional sex combs-like protein 3 (ASXL3) and bromodomain-containing protein 4 (BRD4). Genomic studies, including chromatin immunoprecipitation sequencing (ChIP-seq), RNA sequencing, and genome-wide analysis, were performed in both human and mouse SCLC cells to determine the dynamic relationship between BRD4/ASXL3/BAP1 epigenetic axis in chromatin binding and its effects on transcriptional activity.
Results:
We report a critical link between BAP1 complex and BRD4, which is bridged by the physical interaction between ASXL3 and BRD4 in an SCLC subtype (SCLC-A), which expresses a high level of ASCL1. We further showed that ASXL3 functions as an adaptor protein, which directly interacts with BRD4's extra-terminal (ET) domain via a novel BRD4 binding motif (BBM), and maintains chromatin occupancy of BRD4 to active enhancers. Genetic depletion of ASXL3 results in a genome-wide reduction of histone H3K27Ac levels and BRD4-dependent gene expression in SCLC. Pharmacologically induced inhibition with BET-specific chemical degrader (dBET6) selectively inhibits cell proliferation of a subtype of SCLC that is characterized with high expression of ASXL3.
Conclusions:
Collectively, this study provides a mechanistic insight into the oncogenic function of BRD4/ASXL3/BAP1 epigenetic axis at active chromatin enhancers in SCLC-A subtype, as well as a potential new therapeutic option that could become more effective in treating SCLC patients with a biomarker of ASXL3-highly expressed SCLC cells.
Insights
This study reveals how the ASXL3 protein interacts with BRD4 to drive aggressive small cell lung cancer (SCLC). Targeting this interaction with BET inhibitors offers a promising new therapy for SCLC patients with high ASXL3 expression.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Small cell lung cancer (SCLC) is an aggressive cancer with limited treatment options due to rapid growth and therapeutic resistance.
- Understanding the molecular mechanisms driving SCLC is crucial for developing effective therapies.
Purpose of the Study:
- To investigate the novel mechanistic insight into SCLC cells.
- To identify potential therapeutic alternatives for SCLC patients.
Main Methods:
- Biochemical methods (SEC, MS, Western blot) to study protein-protein interactions between ASXL3 and BRD4.
- Genomic methods (ChIP-seq, RNA-seq) to analyze the BRD4/ASXL3/BAP1 epigenetic axis in SCLC cells.
Main Results:
- A physical interaction between ASXL3 and BRD4 was identified in SCLC-A subtype, mediated by ASXL3 acting as an adaptor protein.
- ASXL3 maintains BRD4 chromatin occupancy at active enhancers, and its depletion reduces H3K27Ac levels and BRD4-dependent gene expression.
- BET-specific degrader dBET6 selectively inhibited proliferation in SCLC subtypes with high ASXL3 expression.
Conclusions:
- The study elucidates the oncogenic role of the BRD4/ASXL3/BAP1 axis in SCLC-A.
- This provides a mechanistic basis for targeting this axis and identifies ASXL3 as a potential biomarker for BET inhibitor therapy in SCLC.
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