Rewiring Oncogenic Transcriptional Complexes with Domain-ALTeration Chimeras (DALTACs) in Prostate Cancer

前列腺癌 雄激素受体 乙酰化 生物 染色质 组蛋白 癌症研究 细胞生物学 增强子 组蛋白乙酰转移酶 PRC2 转录因子 表观遗传学 EZH2型 化学 抄写(语言学) P300-CBP转录因子 体内 流浪汉 蛋白质-蛋白质相互作用 RNA聚合酶Ⅱ HEK 293细胞 心理压抑 RNA干扰 癌症 染色质重塑 H3K4me3 血浆蛋白结合 基因敲除 染色质免疫沉淀 癌细胞 相互作用体 冷冲击域 分子生物学 小发夹RNA 计算生物学
作者
Jie Luo,Jianzhang Yang,Jean Ching-Yi Tien,Mi Wang,Sumit Das,Weiguo Xiang,E YOUNG,Jelena Tošović,Rahul Mannan,Jocelyn Cai,Y Liu,Kenneth Gu,Somnath Mahapatra,Shiting Li,Yitong Yin,Sanjana Eyunni,Abigail J. Todd,Shicheng Jin,Xuhong Cao,Stephanie J. Miner
出处
期刊: [Cold Spring Harbor Laboratory]
标识
DOI:10.64898/2026.04.24.720638
摘要

Transcriptional addiction to the androgen receptor (AR) underlies metastatic castration-resistant prostate cancer (mCRPC), where AR maintains oncogenic enhancer programs through dynamic, domain-specific interactions with the lysine acetyltransferases p300/CBP and associated cofactors. Here, we describe a mechanistically distinct therapeutic modality, Domain-ALTeration Chimeras (DALTACs), designed to rewire endogenous protein complexes by enforcing non-native domain-domain interactions rather than degrading or inhibiting individual components. Our first-in-class molecule, AR-p300/CBP DALTAC-1, induces a synthetic proximity between the AR ligand-binding domain and the p300/CBP bromodomain, thereby misconfiguring the native AR-p300/CBP interface and locking the complex into a non-productive, transcriptionally inert state. DALTAC-1 triggers a profound "super-inhibitory" effect, suppressing AR-driven transcription and proliferation more potently than combined AR and p300/CBP inhibition. Mechanistically, DALTAC-1 reprograms the substrate specificity of p300/CBP, extinguishing the enhancer-associated histone mark H2B N-terminal acetylation (H2BNTac) while inducing neomorphic acetylation of AR and SRC2/3, culminating in collapse of the AR neo-enhanceosome. Chromatin profiling revealed widespread redistribution of AR and p300 toward canonical palindromic AREs, coupled with attenuation of ERG/BRD4 recruitment and a near complete loss of histone H2BNTac acetylation and RNA polymerase II loading at oncogenic AR/ERG neo-enhancers. Strikingly, DALTAC-1 exhibits exquisite lineage selectivity, displaying potent activity in AR-positive prostate cancer cells and patient-derived organoids while sparing AR-negative or non-prostate lineages. In multiple in vivo models, including castration-resistant and patient-derived xenograft tumors, DALTAC-1 induces deep and durable tumor regressions with favorable tolerability. Together, these findings establish DALTACs as a broadly applicable strategy to rewire disease-defining protein complexes by altering their domain topology, expanding the conceptual and therapeutic landscape of induced proximity agents. The precision and lineage-selective action of DALTAC-1 highlight its strong translational potential for treating AR-driven prostate cancer.
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