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通过选择性PARP1降解剂在保持活性抑制的同时最小化DNA捕获。

Minimizing DNA trapping while maintaining activity inhibition via selective PARP1 degrader.

作者信息

Chen Li, Zou Yahui, Sun Renhong, Huang Mei, Zhu Xiaotong, Tang Xiao, Yang Xiaobao, Li Dake, Fan Gaofeng, Wang Yu

机构信息

School of Life Science and Technology, ShanghaiTech University, Shanghai, China.

Gluetacs Therapeutics (Shanghai) Co, Ltd, Pudong District, Shanghai, China.

出版信息

Cell Death Dis. 2024 Dec 18;15(12):898. doi: 10.1038/s41419-024-07277-2.

Abstract

Poly (ADP-ribose) polymerase 1 (PARP1) catalyzes poly (ADP) ribosylation reaction, one of the essential post-translational modifications of proteins in eukaryotic cells. Given that PARP1 inhibition can lead to synthetic lethality in cells with compromised homologous recombination, this enzyme has been identified as a potent target for anti-cancer therapeutics. However, the clinical application of existing PARP1 inhibitors is restrained by side effects associated with DNA trapping and off-target effects, highlighting the need for improved therapeutic strategies. By integrating protein degradation technology, we synthesized a PROTAC molecule 180055 based on the Rucaparib junction and VHL ligand, which efficiently and selectively degraded PARP1 and inhibited PARP1 enzyme activity without a noticeable DNA trapping effect. Furthermore, 180055 kills tumor cells carrying BRCA mutations with a minor impact on the growth of normal cells both in vitro and in vivo. This suggests that 180055 is a PARP1-degrading compound with excellent pharmacological efficacy and extremely high biological safety that deserves further exploration and validation in clinical trials.

摘要

聚(ADP - 核糖)聚合酶1(PARP1)催化聚(ADP)核糖基化反应,这是真核细胞中蛋白质重要的翻译后修饰之一。鉴于PARP1抑制可导致同源重组受损的细胞出现合成致死性,该酶已被确定为抗癌治疗的有效靶点。然而,现有PARP1抑制剂的临床应用受到与DNA捕获相关的副作用和脱靶效应的限制,这凸显了改进治疗策略的必要性。通过整合蛋白质降解技术,我们基于鲁卡帕尼连接体和VHL配体合成了一种PROTAC分子180055,它能有效且选择性地降解PARP1并抑制PARP1酶活性,而不会产生明显的DNA捕获效应。此外,180055在体外和体内均可杀死携带BRCA突变的肿瘤细胞,对正常细胞生长的影响较小。这表明180055是一种具有优异药理疗效和极高生物安全性的PARP1降解化合物,值得在临床试验中进一步探索和验证。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1cc8/11655542/eb4f3615ed61/41419_2024_7277_Fig1_HTML.jpg

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