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美利体育登录入口官网:药物发现中的化学适应性:奥维雷马替尼和利默替尼在克服激酶耐药性中的药物化学历程

Chemical Adaptation in Drug Discovery: The Medicinal Chemistry Journey of Olverembatinib and Limertinib in Overcoming Kinase Drug Resistance

作者:Ke Ding;Yupeng Li;Yang Zhou;Weixue Huang;

DOI:https://doi.org/10.1021/acs.accounts.5c00496

发表时间:2025年

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美利体育登录入口官网:摘要

点击复制章节链接,章节链接已复制!概述:药物耐受性仍然是激酶抑制剂治疗中的一大挑战,尤其在那些长期治疗会促进耐受性突变出现的癌症中。这些突变通常会改变激酶活性位点内的氨基酸残基,重塑局部化学环境并破坏关键的药物-靶点相互作用。由此产生的变化——如位阻效应、关键氢键的丧失、反应性残基的消除或其他结构不相容性——可能会显著降低药物疗效。为了克服这些影响,药物分子必须进行定制的化学适应——通过战略性的修饰,使其分子特征(如几何形状、立体化学、酸碱性和反应性)与突变导致的突变激酶结合口袋中立体、电子和反应性景观的变化相匹配。在本报告中,我们描述了如何通过化学适应的原理指导我们有理有据地设计小分子激酶抑制剂以克服临床相关的耐受性。在过去的18年中,这些努力最终促成了两种靶向治疗药物——olverembatinib和limertinib的发现和批准,以及多个临床阶段候选药物的开发。olverembatinib是为治疗携带门控Bcr-AblT315I突变的慢性髓性白血病患者而开发的,该突变使第一代和第二代抑制剂产生耐受性。为了缓解位阻冲突并恢复丢失的氢键,我们引入了炔基连接子以适应构象变化,并引入了1H-吡唑并[3,4-b]吡啶基部分以在铰链区域形成新的稳定氢键。对于由EGFR T790M驱动耐受性的非小细胞肺癌患者,我们设计了带有亲电子基团的杂环骨架,这些基团能够共价靶向Cys797,从而实现对EGFR突变体的高选择性,同时不影响野生型EGFR。这种方法导致了limertinib的开发,这是一种强效且突变选择性的第三代EGFR抑制剂,已被批准用于治疗有或没有EGFR T790M突变的患者,包括脑转移患者。在这一成功的基础上,我们正在推进下一代抑制剂的开发,以克服其他耐受性突变,如EGFR L858R/T790M/C797S。总而言之,本报告突出了olverembatinib和limertinib获批背后的药物化学策略,说明了如何利用化学适应来克服激酶抑制剂耐受性。展望未来,我们旨在将这一概念扩展到更广泛的药物形式和治疗靶点,以应对持续的临床挑战。ACS出版物版权所有?2025 美国化学学会主题:什么是主题?文章主题自动从ACS主题分类法中应用,描述文章的科学概念和主题。


美利体育登录入口官网:Abstract

AbstractClick to copy section linkSection link copied!ConspectusDrug resistance remains one of the biggest challenges in kinase inhibitor therapy, particularly in cancers where prolonged treatment fosters the emergence of resistant mutations. These mutations often alter amino acid residues within the kinase active site, reshaping the local chemical environment and disrupting critical drug-target interactions. The resulting changes – such as steric hindrance, loss of key hydrogen bonds, elimination of reactive residues, or other structural incompatibilities – can drastically reduce drug efficacy. To counter these effects, drug molecules must undergo tailored chemical adaptation – strategic modifications that align their molecular features (e.g., geometric shape, stereochemistry, acidity/basicity, and reactivity) with the mutation-altered changes in steric, electronic, and reactivity landscapes within the mutant kinase binding pocket. In this Account, we describe how the principles of chemical adaptation guided our rational design of small molecule kinase inhibitors to overcome clinically relevant resistance. Over the past 18 years, these efforts have culminated in the discovery and approval of two targeted therapies – olverembatinib and limertinib – as well as the advancement of several clinical-stage candidates.Olverembatinib was developed to treat chronic myeloid leukemia patients harboring the gatekeeper Bcr-AblT315I mutation, which confers resistance to first- and second-generation inhibitors. To mitigate steric clashes and restore lost hydrogen bonding, we introduced an alkyne linker to accommodate conformational shifts, and a 1H-pyrazolo[3,4-b]pyridinyl moiety to form new stabilizing hydrogen bonds within the hinge region. For non-small cell lung cancer patients with EGFRT790M-driven resistance, we designed heterocyclic scaffolds bearing electrophilic groups capable of covalently targeting Cys797, enabling high selectivity for EGFR mutants while sparing wild-type EGFR. This approach led to the development of limertinib, a potent and mutant-selective third-generation EGFR inhibitor approved for treating patients with or without EGFRT790M mutations, including those with brain metastases. Building on this success, we are advancing next-generation inhibitors designed to overcome additional resistance mutations such as EGFRL858R/T790M/C797S.In summary, this Account highlights the medicinal chemistry strategies underlying the approvals of olverembatinib and limertinib, illustrating how chemical adaptation can be harnessed to overcome kinase inhibitor resistance. Moving forward, we aim to expand this concept across broader drug modalities and therapeutic targets to address ongoing clinical challenges.ACS PublicationsCopyright ? 2025 American Chemical SocietySubjectswhat are subjects Article subjects are automatically applied from the ACS Subject Taxonomy and describe the scientific concepts and themes of the article. Cancer Genetics Inhibitors Kinase inhibitors Peptides and proteins


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