共价键
生物结合
组合化学
共价结合
半胱氨酸
化学
电泳剂
亲核细胞
试剂
纳米技术
表面改性
化学生物学
药物发现
模块化设计
药品
靶蛋白
翻译后修饰
药物开发
生物相容性材料
化学改性
动态共价化学
计算机科学
作者
Zachary P. Shultz,Ansar Lee-Sam,Yun‐Pu Chang,Luxin Sun,Dylan Grassie,Alessio Gabellini,Kyle Pedretty,Thomas Scattolin,Victoria Izumi,Bin Fang,Samer Sansil,Ramu Kakumanu,Łukasz Wojtas,John M. Koomen,E. Schönbrunn,Andrii Monastyrskyi,Derek Duckett,Justin M. Lopchuk
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-07-23
卷期号:393 (6809): 408-416
标识
DOI:10.1126/science.adx7219
摘要
Covalent inhibition continues to gain momentum as a strategy for selective protein modulation in both therapeutic and chemical biology contexts. Covalent reactive groups (CRGs) typically engage nucleophilic residues such as cysteine, resulting in targeted protein inactivation. However, common electrophiles such as acrylamides often suffer from nonselective reactivity, leading to off-target effects and toxicity. To overcome these limitations, we developed a modular sulfur(IV) reagent platform for the mild, late-stage installation of sulfonyl- and sulfonimidoyl-bicyclobutane motifs with complete cysteine selectivity. This methodology enables access to diverse sulfur(VI) CRGs with tunable strain-release reactivity. Incorporation into US Food and Drug Administration-approved covalent inhibitors demonstrated effective bioisosteric replacement of acrylamides and the potential of strain-release CRGs for selective protein targeting. Preclinical studies in mice have validated this approach, highlighting its promise for next-generation covalent drug design.
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