PO.ET09.04 · 实验与分子治疗
通过定向降解实现下一代PRMT5活性调控
Next-generation PRMT5 activity modulation through directed degradation
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
PRMT5是一种关键的表观遗传调控因子,负责组蛋白和非组蛋白上精氨酸残基的对称性二甲基化(SDMA),从而调控转录、RNA剪接和基因组稳定性。PRMT5活性与一系列恶性肿瘤相关,使其成为一个有吸引力的治疗靶点。SAM竞争性和蛋白质底物竞争性PRMT5抑制剂的治疗潜力,一直受到剂量限制性血细胞减少的阻碍,导致靶点覆盖不完全。相比之下,MTA协同性抑制剂利用MTA(一种SAM竞争性PRMT5抑制剂)在MTAP缺失肿瘤中的蓄积,以实现增强的肿瘤选择性。MTA协同性降解剂有望消除PRMT5的催化性和非催化性功能,并具有更深入、更持久的靶点调控。在此,我们描述了能够快速、强效且选择性地清除PRMT5的PRMT5定向降解剂。我们的降解剂在处理6小时内即表现出强效而稳健的PRMT5降解,导致SDMA显著抑制。机制研究表明,PRMT5的丢失严格依赖于UPS,因为对泛素化或蛋白酶体活性的药理学阻断可有效消除降解剂诱导的PRMT5周转。我们的数据凸显了PRMT5靶向降解的潜力,其驱动PRMT5活性快速且选择性的沉默,能够克服第一代抑制剂的局限性,为PRMT5驱动的癌症提供一种差异化的治疗方法。
查看英文原文 English abstract
PRMT5 is a key epigenetic regulator that is responsible for symmetric demethylation (SDMA) of arginine residues on histones and non-histone proteins, leading to regulation of transcription, RNA splicing, and genome stability. PRMT5 activity is linked to a range of malignancies, making it an attractive therapeutic target. The therapeutic potential of SAM and protein substrate competitive PRMT5 inhibitors have been hampered by dose-limiting cytopenia leading to incomplete target coverage. In contrast, MTA-cooperative inhibitors exploit the accumulation of MTA, a SAM-competitive inhibitor of PRMT5, in MTAP-deleted tumors to achieve enhanced tumor selectivity. MTA-cooperative degraders offer the potential to eliminate both catalytic and non-catalytic functions of PRMT5 with improved depth and durability of target modulation. Here, we describe PRMT5-directed degraders that rapidly, potently, and selectively eliminate PRMT5. Our degraders exhibit potent and robust PRMT5 degradation within 6 hours of treatment, leading to marked suppression of SDMA. Mechanistic studies demonstrate that PRMT5 loss is strictly dependent on UPS, as pharmacological blockade of ubiquitination or proteasomal activity effectively abrogates degrader-induced PRMT5 turnover. Our data highlights the potential for PRMT5 targeted degradation, driving a rapid and selective silencing of PRMT5 activity that can overcome limitations of first-generation inhibitors and provide a differentiated therapeutic approach for PRMT5-driven cancers.
利益披露 Disclosure
J. C. Clemente, None..
X. Zhang, None..
B. Vidal, None..
A. Stonberger, None..
S. Banjade, None..
C. T. Rice, None..
N. M. Kendsersky, None..
C. A. Rhodes, None..
M. Tudor, None..
Q. Deng, None..
B. Han, None..
C. Aguilar-Bonavides, None..
E. Behshad, None..
S. D. Knight, None..
C. Strickland, None..
L. J. Jolivette, None..
R. G. Kruger, None.