PO.CL12.03 · 临床研究
探究雌激素受体阳性和ESR1突变型乳腺癌的内在表观遗传依赖性
Investigating the intrinsic epigenetic dependencies of estrogen receptor positive and ESR1 mutant breast cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:雌激素受体α(ERalpha)是一种核甾体激素受体,通过DNA结合调控转录。ER是一种谱系决定性转录因子(TF),驱动约70%表达该受体的乳腺癌(BC)病例。芳香化酶抑制剂或选择性雌激素受体调节剂治疗是ER+ BC的一线内分泌治疗,它们分别通过破坏配体可用性或拮抗ER而发挥作用。编码ERalpha的基因ESR1的激活性突变,在约25%的转移性病例中富集。ESR1突变将ER锁定在活性构象,赋予配体非依赖性信号传导、内分泌治疗耐药和增殖能力增强。野生型和突变型ER主要通过增强子元件而非启动子发挥作用,依赖转录辅因子和染色质重塑复合物网络来促进增强子可及性。靶向这些表观遗传依赖性是一种有前景的治疗策略。哺乳动物SWI/SNF(mSWI/SNF)染色质重塑复合物与ER相关转录因子(包括FOXA1)相互作用,并支持增强子活性和ER招募。因此,破坏mSWI/SNF功能可能损害ER+ BC中ER驱动的转录程序。
方法:使用SMARCA2/4双重PROTAC降解剂或选择性SMARCA2/4 ATP酶抑制剂扰动mSWI/SNF活性。在多种ER+和ESR1突变型BC临床前模型(包括细胞系和患者来源异种移植物(PDX))中评估药理学效应。使用RNA-seq、ATAC-seq、ChIP-seq和RIME等多组学技术研究ER信号破坏和mSWI/SNF依赖性的作用机制。
结果:我们显示ER+ BC细胞系在纳摩尔浓度的两种化合物下对mSWI/SNF复合物失活优先敏感。我们还证明在ER野生型和突变型PDX模型中均有显著的抗肿瘤活性。这种抗增殖表型被证明由ER信号轴破坏驱动,关键下游靶点如c-Myc和CCND1被下调。从机制上,我们证明这些效应是由增强子区域染色质可及性降低、FOXA1和ER顺式作用组的变化以及ER相互作用组的破坏所介导。
结论:我们确立mSWI/SNF复合物作为维持ER+ BC中ER转录活性的关键表观遗传依赖性。靶向SMARCA2/4的治疗有效破坏增强子功能、损害ER信号并抑制肿瘤生长。因此,mSWI/SNF导向的治疗代表了针对晚期和内分泌耐药性ER+乳腺癌的一种有前景的策略。
查看英文原文 English abstract
Background: Estrogen receptor alpha (ERalpha) is a nuclear steroid hormone receptor that regulates transcription through DNA binding. ER is a lineage defining transcription factor (TF) that drives approximately 70% of breast cancer (BC) cases expressing the receptor. Aromatase inhibitor or selective estrogen receptor modulator treatment are first-line endocrine therapies for the treatment of ER + BC, and they function by disrupting ligand availability or antagonizing ER, respectively. Activating mutations in ESR1 , the gene encoding ERalpha, are enriched in approximately 25% of metastatic cases. ESR1 mutations lock ER in an active conformation, conferring ligand-independent signaling, endocrine therapy resistance, and increased proliferative capacity. Both wild-type and mutant ER primarily act through enhancer elements rather than promoters, relying on a network of transcriptional co-factors and chromatin remodeling complexes to facilitate enhancer accessibility. Targeting these epigenetic dependencies represents a promising therapeutic strategy. The mammalian SWI/SNF (mSWI/SNF) chromatin remodeling complex interacts with ER-associated transcription factors, including FOXA1, and supports enhancer activity and ER recruitment. Thus, disrupting mSWI/SNF function may impair ER-driven transcriptional programs in ER + BC.
Methods: mSWI/SNF activity was perturbed using either a dual PROTAC degrader of SMARCA2/4 or a selective SMARCA2/4 ATPase inhibitor. Pharmacological effect was assessed in a variety of preclinical models of ER + and ESR1 mutant BC including cell lines and patient-derived xenografts (PDX). Mechanisms of action of ER signaling disruption and mSWI/SNF dependence were investigated using multi-omics techniques such as RNA-seq, ATAC-seq, ChIP-seq, and RIME.
Results: We showed that ER + BC cell lines are preferentially sensitive to mSWI/SNF complex inactivation at nanomolar concentrations of both compounds. We also demonstrated significant anti-tumor activity in both ER wild type and mutant PDX models. This anti-proliferative phenotype is shown to be driven by ER signaling axis disruption, with key downstream targets like c-Myc and CCND1 being downregulated. Mechanistically, we demonstrate these effects are mediated by reduced chromatin accessibility at enhancer regions, changes in the FOXA1 and ER cistromes, and a disruption of the ER interactome.
Conclusions: We establish the mSWI/SNF complex as a critical epigenetic dependency that sustains ER transcriptional activity in ER+ BC. Therapeutic targeting of SMARCA2/4 effectively disrupts enhancer function, impairs ER signaling, and suppresses tumor growth. mSWI/SNF-directed therapies therefore represent a promising strategy for advanced and endocrine-resistant ER+ breast cancers.
利益披露 Disclosure
A. Coleski, None..
E. Young, None..
S. Das, None..
X. Cao, None..
S. VanAken, None..
F. Su, None..
R. Wang, None..
J. M. Rae, None..
A. Parolia, None..
Y. Qiao, None.