PO.ET09.01 · 实验与分子治疗
通过小分子降解靶向PRC2的非经典功能:前列腺癌及其他实体瘤的新型治疗策略
Targeting non-canonical PRC2 functions via small-molecule degradation: A novel therapeutic strategy for prostate cancer and other solid tumors
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:多梳抑制复合物2(PRC2)是负责组蛋白H3赖氨酸27甲基化(H3K27me3)的关键表观遗传调控因子,参与多种重要的细胞过程。然而,其核心组分EZH2和EED还通过与其他蛋白的蛋白-蛋白相互作用(PPI)发挥广泛的非常规功能,这些功能独立于其甲基转移酶活性。PRC2组分(尤其是EZH2)的异常激活或过表达在多种癌症中驱动肿瘤发生和肿瘤进展。尽管已开发出多种靶向PRC2组分(EZH2、EED和EZH1/2)的酶抑制剂,但其治疗疗效仍然有限,特别是在实体瘤中,临床应答往往有限且短暂。值得注意的是,来自KO/KD模型以及PROTAC的新兴证据凸显了非经典、非酶促功能在肿瘤维持中的作用,使PRC2成为更有效的治疗靶点。靶向这些功能的基于PROTAC的降解剂显示出前景,但受制于较差的通透性和稳定性。我们开发了新型小分子PRC2降解剂以克服这些局限。
方法:对小分子先导候选物CTS3353和CTS3952进行了PRC2降解疗效评估,以及在多种癌细胞系(如mCRPC细胞22Rv1、DLBCL Karpas422)中的体外抗增殖作用评估。在前列腺癌(尤其是mCRPC)和DLBCL的细胞来源异种移植(CDX)模型中进行了药代动力学和体内疗效研究。
结果:CTS3353和CTS3952通过在22Rv1和Karpas422细胞中破坏复合物实现了强效的PRC2下调。与传统的基于PROTAC的降解剂相比,它们表现出更优越的细胞通透性和代谢稳定性。两种化合物均诱导对PRC2组分的持续抑制,从而产生强效的抗增殖作用。在mCRPC CDX模型中,CTS3353和CTS3952取得了强大的抗肿瘤活性,减少了肿瘤负荷并改善了生存,且未观察到全身毒性。这些效应归因于对PRC2非经典功能的破坏,而非其组蛋白甲基转移酶活性。
结论:我们的研究结果凸显了通过小分子降解靶向PRC2非酶促功能的治疗潜力。CTS3353和CTS3952代表了一类新型强效且具有生物利用度的PRC2降解剂,在mCRPC和TNBC等实体瘤模型中具有良好的临床前疗效。该策略为超越酶抑制的下一代PRC2导向癌症疗法奠定了基础。
查看英文原文 English abstract
Background: The Polycomb Repressive Complex 2 (PRC2) is a key epigenetic regulator responsible for histone H3 lysine 27 methylation (H3K27me3) and is implicated in essential cellular processes. However, its core components, EZH2 and EED, also exert extensive non-conventional functions through protein-protein interactions (PPIs) with other proteins, independent of its methyltransferase activity. Aberrant activation or overexpression of PRC2 components, particularly EZH2, drives oncogenesis and tumor progression in a variety of cancers. While several enzymatic inhibitors targeting PRC2 components (EZH2, EED, and EZH1/2) have been developed, their therapeutic efficacy remains limited, particularly in solid tumors, where clinical responses are often modest and transient. Notably, emerging evidence from KO/KD models, as well as PROTACs underscores the non-canonical, non-enzymatic functions in tumor maintenance, positioning PRC2 as a more effective therapeutic target. PROTAC-based degraders targeting these functions show promise but are hampered by poor permeability and stability. We developed novel small-molecule PRC2 degraders to overcome these limitations.
Methods: Small molecular lead candidates CTS3353 and CTS3952 were evaluated for their -PRC2 degradation efficacy, and in vitro antiproliferative effects across multiple cancer cell lines (e.g., mCRPC cell 22Rv1, DLBCL Karpas422). Pharmacokinetic and in vivo efficacy were performed in cell-derived xenograft (CDX) models of prostate cancer (especially in mCRPC) and DLBCL.
Results: CTS3353 and CTS3952 achieved potent PRC2 downregulation through complex disruption in 22Rv1 and Karpass422 cells. They exhibited superior cell permeability and metabolic stability compared to conventional PROTAC-based degraders. Both compounds induced sustained suppression of PRC2 components, leading to potent anti-proliferative effects. In mCRPC CDX models, CTS3353 and CTS3952 achieved robust antitumor activity, reducing tumor burden and improving survival without observable systemic toxicity. These effects were attributed to the disruption of PRC2's non-canonical functions rather than its histone methyltransferase activity.
Conclusions: Our findings highlight the therapeutic potential of targeting the non-enzymatic functions of PRC2 through small-molecule degradation. CTS3353 and CTS3952 represent a new class of potent and bioavailable PRC2 degraders with promising preclinical efficacy in solid tumor models such as mCRPC and TNBC. This strategy provides a foundation for next-generation PRC2-directed cancer therapies beyond enzymatic inhibition.
利益披露 Disclosure
H. Shi,
CytosinLab Therapeutics Co., Ltd. Employment.
X. Duan,
CytosinLab Therapeutics Co., Ltd. Employment.
J. Huang,
CytosinLab Therapeutics Co., Ltd. Employment.
Q. Ouyang,
CytosinLab Therapeutics Co., Ltd. Employment.
X. Fu,
CytosinLab Therapeutics Co., Ltd. Employment.
G. Xu,
CytosinLab Therapeutics Co., Ltd. Other, co-founder.
H. Wu,
CytosinLab Therapeutics Co., Ltd. Other, co-founder.