PO.MCB07.01 · 分子与细胞生物学

SOX2-RUNX2/TEAD4信号轴驱动ESCC进展并通过Hippo/MAPK通路暴露治疗弱点

The SOX2-RUNX2/TEAD4 signaling axis drives ESCC progression and exposes therapeutic vulnerabilities via Hippo/MAPK pathways

海报缩略图:SOX2-RUNX2/TEAD4信号轴驱动ESCC进展并通过Hippo/MAPK通路暴露治疗弱点
编号 4753 展板 3 时间 4/21 09:00–12:00 区域 Section 24 主讲 Jin Zhou, MD;PhD
分会场 Oncogenic Transcription Factors and Cancer Programs
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作者与单位 Authors & Affiliations

Shangwei Sun1, Yixiao Li1, Yating Xu1, Jin Zhou1, Adam Bass2, ZHONG WU1

1West China Hospital of Sichuan University, Chengdu City, China,2Gastrointestinal Oncology Service, Department of Medicine, Memorial Sloan Kettering Cancer Center, New York, NY

摘要 Abstract

中文摘要
SOX2已被确认为食管鳞状细胞癌(ESCC)中一种频发的基因组扩增和强效的致癌驱动因素。我们此前基于Trp53/Cdkn2a敲除和Sox2过表达构建了一个ESCC类器官模型,并随后证明了SOX2在ESCC发生过程中关键的表观遗传和转录功能。然而,有效靶向SOX2驱动的ESCC仍具挑战性。为定义SOX2下游的转录和表观基因组机制并识别可靶向的弱点,我们通过RNA-seq、ATAC-seq、SOX2 ChIP-seq和H3K27ac ChIP-seq对我们的ESCC类器官模型和过表达SOX2的人类ESCC细胞系进行了分析。我们的发现表明,SOX2通过在其顺式调控元件处形成超级增强子来上调RUNX2。这种RUNX2蛋白随后作为辅因子发挥作用,直接结合SOX2。通过将RUNX2 ChIP-seq数据与上述多组学分析整合,我们揭示SOX2和RUNX2共同调控广泛的致癌通路,其中Hippo通路显著富集。多组学分析揭示,SOX2和RUNX2显著富集于关键Hippo通路基因(如YAP1、TEAD4、CTGF和CYR61)的顺式调控元件处,并协同调控它们的表达。我们发现,TEAD4作为一个关键的Hippo通路转录因子,也直接与SOX2相互作用。它显著地共占据SOX2建立的超级增强子,导致下游MAPK通路上调。此外,在人类ESCC细胞系中,敲低SOX2下调了RUNX2、TEAD4及其下游靶点。与此一致,沉默RUNX2或TEAD4抑制了相应的Hippo和MAPK信号通路。总之,这些发现揭示了SOX2-RUNX2/TEAD4-Hippo/MAPK信号轴在SOX2驱动的ESCC发生中的关键作用。因此,我们使用类器官和细胞系模型评估了MEK抑制剂曲美替尼、TEAD4抑制剂IAG933和BRD4抑制剂JQ1的治疗疗效。这些药物在体外和体内均显著抑制ESCC增殖。值得注意的是,联合治疗策略显示出协同效应,产生了增强的细胞毒性。总之,我们的研究揭示了驱动SOX2扩增型ESCC的一种新型表观遗传机制,并将SOX2-RUNX2/TEAD4轴确定为一个有前景的治疗靶点。这些发现为在临床试验中评估靶向该轴的治疗策略、用于这一侵袭性恶性肿瘤患者提供了强有力的临床前依据。
查看英文原文 English abstract
SOX2 has been identified as a frequent genomic amplification and potent oncogenic driver in esophageal squamous cell carcinoma (ESCC). We previously generated an ESCC organoid model based on Trp53 / Cdkn2a knockout and Sox2 overexpression, and subsequently demonstrated the critical epigenetic and transcriptional functions of SOX2 during ESCC development. However, effectively targeting SOX2 -driven ESCC remains challenging. To define the transcriptional and epigenomic mechanisms downstream of SOX2 and identify targetable vulnerabilities, we profiled our ESCC organoid model and human ESCC cell lines with SOX2 overexpression via RNA-seq, ATAC-seq, SOX2 ChIP-seq, and H3K27ac ChIP-seq. Our findings show that SOX2 upregulates RUNX2 by forming super-enhancers at its cis-regulatory elements. This RUNX2 protein then functions as a cofactor, binding directly to SOX2. By integrating RUNX2 ChIP-seq data with the above multi-omic profiles, we revealed that SOX2 and RUNX2 co-regulate a broad spectrum of oncogenic pathways, among which the Hippo pathway was prominently enriched. Multi-omic analyses revealed that SOX2 and RUNX2 are significantly enriched at the cis-regulatory elements of key Hippo pathway genes-such as YAP1 , TEAD4 , CTGF , and CYR61 -and cooperatively regulate their expression. We found that TEAD4, a key Hippo pathway transcription factor, also interacts directly with SOX2. It notably co-occupied SOX2-established super-enhancers, leading to the upregulation of the downstream MAPK pathway. Furthermore, in human ESCC cell lines, SOX2 knockdown downregulated RUNX2, TEAD4, and their downstream targets. Consistently, silencing RUNX2 or TEAD4 suppressed the corresponding Hippo and MAPK signaling pathways. Collectively, these findings uncover a critical role for the SOX2-RUNX2/TEAD4-Hippo/MAPK signaling axis in SOX2-driven ESCC development. Therefore, we evaluated the therapeutic efficacy of the MEK inhibitor trametinib, the TEAD4 inhibitor IAG933, and the BRD4 inhibitor JQ1 using both organoid and cell line models. These agents significantly suppressed ESCC proliferation in vitro and in vivo. Notably, combinatorial treatment strategies demonstrated synergistic effects, resulting in enhanced cytotoxicity. In conclusion, our study uncovers a novel epigenetic mechanism driving SOX2 -amplified ESCC and identifies the SOX2-RUNX2/TEAD4 axis as a promising therapeutic target. These findings provide a strong preclinical rationale for evaluating therapeutic strategies targeting this axis in clinical trials for patients with this aggressive malignancy.
利益披露 Disclosure
S. Sun, None.. Y. Li, None.. Y. Xu, None.. J. Zhou, None.. A. Bass, None.. Z. Wu, None.

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