Beyond the ATP-binding pocket: emerging strategies in kinase targeting from allosteric inhibition to targeted protein degradation.

IF 3.3 4区 医学 Q3 CHEMISTRY, MEDICINAL
Future medicinal chemistry Pub Date : 2026-09-01 Epub Date: 2026-08-13 DOI:10.1080/17568919.2026.2718758
Mei Zhou, Linshan Li, Xiaojuan Tang, Yazhu Zhao, Wei Zhang
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引用次数: 0

Abstract

Protein kinases are central regulators of cellular signaling and remain a major target class in precision medicine. While ATP-competitive inhibitors-including conformation-selective and covalent agents-have delivered substantial clinical benefit, durable responses are frequently limited by the conservation of the ATP pocket and the emergence of resistance mutations (e.g. gatekeeper and solvent-front substitutions), as well as kinase noncatalytic functions that are not addressed by enzymatic inhibition alone. Consequently, kinase drug discovery is expanding beyond orthosteric occupancy toward modalities that reprogram kinase conformations or eliminate the target protein. This Review summarizes the structural and medicinal chemistry principles underlying (i) allosteric inhibition and (ii) proximity-induced degradation, with an emphasis on design logic, structure-activity relationships, and key liabilities in the beyond rule of five space. We further highlight enabling technologies-including structural biology, chemical proteomics, and AI/ML-assisted modeling-that support allosteric site identification, ternary complex engineering, and multi-parameter optimization. Finally, we discuss translational challenges for bifunctional molecules, including permeability, exposure-response relationships, off-target degradation, and safety, and propose practical considerations for developing next-generation selective kinase therapeutics.

超越atp结合口袋:从变构抑制到靶向蛋白降解的激酶靶向新策略。
蛋白激酶是细胞信号传导的中心调节因子,是精准医学的主要靶标。虽然ATP竞争性抑制剂-包括构象选择性和共价剂-已经提供了实质性的临床益处,但持久的反应经常受到ATP口袋的保护和抗性突变的出现(例如守门者和溶剂前取代)以及激酶非催化功能的限制,这些功能不能单独通过酶抑制来解决。因此,激酶药物的发现正在从正位占据扩展到重编程激酶构象或消除靶蛋白的模式。本文综述了结构和药物化学原理的基础上(i)变构抑制和(ii)邻近诱导降解,重点是设计逻辑,结构-活性关系,并在五超越规则空间的关键责任。我们进一步强调了支持变构位点鉴定、三元复杂工程和多参数优化的使能技术,包括结构生物学、化学蛋白质组学和人工智能/机器学习辅助建模。最后,我们讨论了双功能分子的翻译挑战,包括渗透性、暴露-反应关系、脱靶降解和安全性,并提出了开发下一代选择性激酶疗法的实际考虑因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Future medicinal chemistry
Future medicinal chemistry CHEMISTRY, MEDICINAL-
CiteScore
5.80
自引率
2.40%
发文量
118
审稿时长
4-8 weeks
期刊介绍: Future Medicinal Chemistry offers a forum for the rapid publication of original research and critical reviews of the latest milestones in the field. Strong emphasis is placed on ensuring that the journal stimulates awareness of issues that are anticipated to play an increasingly central role in influencing the future direction of pharmaceutical chemistry. Where relevant, contributions are also actively encouraged on areas as diverse as biotechnology, enzymology, green chemistry, genomics, immunology, materials science, neglected diseases and orphan drugs, pharmacogenomics, proteomics and toxicology.
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