Zuqin Wang, Xuan Wang, Yong Li, Peishan Li, Shengjie Huang, Peng Chen, Guanghui Tang, Xiaotong Ding, Prof. Dr. Zhang Zhang, Prof. Dr. Zhi-Min Zhang, Prof. Dr. Yang Zhou, Prof. Dr. Shao Q. Yao, Prof. Dr. Xiaoyun Lu
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引用次数: 0
摘要
由于其高pKa和固有的低反应性,通过共价修饰靶向激酶中表面暴露的赖氨酸提出了主要挑战。虽然目前的研究主要针对埋在atp结合口袋中的更具活性的催化赖氨酸,但尚未开发出系统的合理策略来选择性地参与表面暴露的赖氨酸。在这里,我们提出了一种开发细胞活性共价激酶抑制剂(CKIs)的通用策略,通过使用方形化学选择性地靶向独特的表面暴露赖氨酸。通过使用Aurora A (AURKA)作为概念验证,我们系统地评估了这种方法与其他已知的赖氨酸反应性弹头(例如,EBA, SO2F和OSO2F)的对比,并首次证明了squarates在处理这些具有挑战性的低反应性赖氨酸方面的卓越功效。在各种AURKA CKIs中,AL8是同类中第一种基于方形的细胞活性抑制剂,在生物化学和细胞分析中都表现出优异的选择性,并且在共价作用的内源性AURKA中具有较长的停留时间。详细研究离去基团对方酯的影响,为赖氨酸反应性CKIs的未来发展提供了有价值的见解。我们的发现已经建立了方形配体作为一个独特的和易于调整的平台,用于共价修饰表面暴露的非催化赖氨酸,用于靶向激酶药物的发现。
Cell-Active, Irreversible Covalent Inhibitors Targeting a Surface-Exposed Non-Catalytic Lysine on Aurora a Kinase by Using Squarate Chemistry
Targeting surface-exposed lysines in kinases through covalent modification presents a major challenge due to their high pKa and inherently low reactivity. While current research primarily targets more reactive catalytic lysines buried in the ATP-binding pocket, no systematic rational strategy has yet been developed for selectively engaging surface-exposed lysines. Herein, we present a versatile strategy for developing cell-active covalent kinase inhibitors (CKIs) by selectively targeting unique surface-exposed lysines using squarate chemistry. By using Aurora A (AURKA) as a proof-of-concept, we systematically evaluated this approach against other well-known lysine-reactive warheads (e.g., EBA, SO2F, and OSO2F) and demonstrated, for the first time, squarates’ superior efficacy in engaging these challenging low-reactivity lysines. Amongst various AURKA CKIs, AL8 emerged as the first-in-class squarate-based, cell-active inhibitor, exhibiting excellent selectivity in both biochemical and cellular assays with long-residence time in covalently engaging endogenous AURKA. Detailed investigation of effects of leaving groups on squaric esters provided valuable insights for future development of lysine-reactive CKIs. Our finding has established squarate-containing ligands as a unique and readily tunable platform for covalent modification of surface-exposed, non-catalytic lysines in targeted kinase drug discovery.