PO.MCB06.04 · 分子与细胞生物学

染色质重塑因子SMARCA5在非裔美国人前列腺癌中表现出祖源特异性功能

The chromatin remodeler SMARCA5 displays ancestry-specific functions in African American prostate cancer

编号 3229 展板 11 时间 4/20 02:00–05:00 区域 Section 21 主讲 Moray Campbell, MS;PhD
分会场 Epigenomics
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作者与单位 Authors & Affiliations

Shahid Hussain1, Khalid Mir2, Sajad A. Wani3, Solomon Rotimi4, Lara Sucheston-Campbell2, Clayton C. Yates5, Moray J. Campbell1

1Cedars-Sinai Medical Center, Los Angeles, CA,2Karmanos Cancer Institute, Detroit, MI,3University of Cincinnati, Cincinnati, OH,4Covenant University, Ota, Ogun State, Nigeria,5Sidney Kimmel Comprehensive Cancer Center, Baltimore, MD

摘要 Abstract

中文摘要
此前,我们发现BAZ1A和SMARCA5在非裔美国人(AA)前列腺癌(PCa)中显著下调,且BAZ1A改变了维生素D受体(VDR)依赖的转录敏感性。SMARCA5是多种染色质重塑复合物的ATP酶核心,包括在发育增强子处促进染色质可及性的WICH,以及介导rDNA转录抑制并参与核仁应激通路的NoRC。在本研究中,我们检验了祖源如何塑造SMARCA5复合物的组成和影响。在AA(RC43T和RC77T)和欧裔美国人(EA,LNCaP)PCa细胞模型中进行的整合性ATAC-Seq以及H3K27ac和AR CUT&RUN分析,揭示了AA特异性的H3K27ac标记的可及染色质。这些区域富集了包括BATF等碱性亮氨酸拉链/AP-1基序在内的基序,并与AA PCa增强子图谱显著交集。同样,源自AA PCa细胞系的AR顺式调控组与源自AA原发肿瘤的AR顺式调控组显著交集。为检验SMARCA5复合物的组成和功能是否因祖源而异,我们在AA和EA PCa模型中进行了SMARCA5的CRISPR激活。RIME揭示SMARCA5在AA细胞中与WICH和NoRC亚基选择性组装,而在EA细胞中则没有。CUT&RUN证明,与LNCaP细胞相比,AA富集的SMARCA5复合物靶向不同的增强子和启动子,并与基础H3K27ac顺式调控组相呼应。反映谱系和应激反应特异性作用,AA的SMARCA5顺式调控组富集了BATF、VDR以及p53/p73基序。转录组学分析证明,SMARCA5激活诱导了AA PCa所独有的强烈管腔分化程序,并得到GSEA的支持。AA细胞中受SMARCA5控制的VDR靶基因包括VDR调控的miRNA(如miR-200c),后者也与分化相关。整合的ATAC-Seq和RNA-Seq分析证明,管腔基因是AA PCa中活性增强子-转录组相关性的主要贡献者,并通过随机森林方法得到证实。最后,来自非洲、AA和EA PCa的祖源分层临床队列显示,维生素D水平、SMARCA5依赖的基因特征与肿瘤分级之间存在显著的临床关联。总之,这些发现提示,SMARCA5表达降低会影响谱系决定性活性增强子的可用性以及异染色质边界的建立,可能是对应激的响应(并由p53/p73通路介导)。以此方式,祖源选择性地破坏SMARCA5复合物,并塑造转录输出。SMARCA5复合物的组成及其染色质输出代表了祖源分层特征,在AA PCa中具有潜在的生物标志物和治疗相关性。
查看英文原文 English abstract
Previously, we identified that BAZ1A and SMARCA5 were significantly downregulated in in African American (AA) prostate cancer (PCa), and that BAZ1A altered vitamin D receptor (VDR)-dependent transcriptional sensitivity. SMARCA5 is the ATPase core of different chromatin remodeling complexes, including WICH that promotes accessible chromatin at developmental enhancers, and NoRC, which mediated repression of rDNA transcription and contributes to nucleolar stress pathways. In the current study we tested how ancestry shaped the composition and impact of the SMARCA5 complex. Integrative ATAC-Seq, and H3K27ac and AR CUT&RUN in AA (RC43T and RC77T) and European American (EA, LNCaP) PCa cell models revealed AA-specific H3K27ac marked accessible chromatin. These regions were enriched for motifs including the basic leucine zipper/AP-1 motifs such as BATF and significantly intersected AA PCa enhancer landscapes. Likewise, the AR cistrome from AA PCa cell lines significantly intersected with the AR cistrome derived from AA primary tumors. To test whether SMARCA5 complex composition and function differed by ancestry, we performed CRISPR activation of SMARCA5 in AA and EA PCa models. RIME revealed selective assembly of SMARCA5 with WICH and NoRC subunits in AA, but not in EA cells. CUT&RUN demonstrated that AA-enriched SMARCA5 complexes targeted distinct enhancers and promoters compared to LNCaP cells and mirrored the basal H3K27ac cistromes. Reflecting lineage- and stress response-specific roles the AA SMARCA5 cistrome was enriched BATF, VDR, and p53/p73 motifs. Transcriptomic analysis demonstrated that SMARCA5 activation induced a strong luminal differentiation program unique to AA PCa, supported by GSEA. SMARCA5 controlled VDR target genes in AA cells included VDR governed miRNA (e.g. miR-200c) that also related to differentiation. Integrated ATAC- and RNA-Seq analyses demonstrated that luminal genes were the dominant contributors to active enhancer-transcriptome correlations in AA PCa, confirmed using random forest approaches. Finally, ancestry-stratified clinical cohorts from Africa, AA, and EA PCa showed significant clinical associations between vitamin D levels, SMARCA5-dependent gene signatures and tumor grade. Together, these findings suggest that reduced SMARCA5 expression impacts both the availability of lineage-defining active enhancers and the establishment of heterochromatin boundaries, potentially in response to stress (and mediated by p53/p73 pathways). In this manner, ancestry selectively disrupts the SMARCA5 complex, and shapes transcriptional outputs. SMARCA5 complex composition and its chromatin outputs represent ancestry-stratified features with potential biomarker and therapeutic relevance in AA PCa.
利益披露 Disclosure
S. Hussain, None.. K. Mir, None.. S. A. Wani, None.. L. Sucheston-Campbell, None.. M. J. Campbell, None.

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