最小化DNA捕获,同时通过选择性PARP1降解维持活性抑制。

IF 8.1 1区 生物学 Q1 CELL BIOLOGY Cell Death & Disease Pub Date : 2024-12-18 DOI:10.1038/s41419-024-07277-2
Li Chen, Yahui Zou, Renhong Sun, Mei Huang, Xiaotong Zhu, Xiao Tang, Xiaobao Yang, Dake Li, Gaofeng Fan, Yu Wang
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引用次数: 0

摘要

聚(ADP)核糖聚合酶1 (PARP1)催化聚(ADP)核糖基化反应,是真核细胞中重要的蛋白质翻译后修饰之一。鉴于PARP1抑制可导致同源重组受损细胞的合成致死,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捕获和脱靶效应相关的副作用的限制,这突出了改进治疗策略的必要性。结合蛋白降解技术,我们合成了基于Rucaparib结和VHL配体的PROTAC分子180055,该分子能够高效、选择性地降解PARP1,抑制PARP1酶活性,且无明显的DNA诱捕效应。此外,180055杀死携带BRCA突变的肿瘤细胞,对体内和体外正常细胞的生长影响很小。这说明180055是一种具有优异药理功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。
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Minimizing DNA trapping while maintaining activity inhibition via selective PARP1 degrader.

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.

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来源期刊
Cell Death & Disease
Cell Death & Disease CELL BIOLOGY-
CiteScore
15.10
自引率
2.20%
发文量
935
审稿时长
2 months
期刊介绍: Brought to readers by the editorial team of Cell Death & Differentiation, Cell Death & Disease is an online peer-reviewed journal specializing in translational cell death research. It covers a wide range of topics in experimental and internal medicine, including cancer, immunity, neuroscience, and now cancer metabolism. Cell Death & Disease seeks to encompass the breadth of translational implications of cell death, and topics of particular concentration will include, but are not limited to, the following: Experimental medicine Cancer Immunity Internal medicine Neuroscience Cancer metabolism
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