生物正交化学
四嗪
点击化学
化学
组合化学
芳基
结合
劈理(地质)
背景(考古学)
动力学
酰肼
有机化学
材料科学
生物
古生物学
烷基
断裂(地质)
数学分析
数学
物理
复合材料
量子力学
作者
Martin Wilkovitsch,Walter Kuba,Patrick Keppel,Barbara Sohr,Andreas Löffler,Stefan Kronister,Andres Fernandez del Castillo,Marion Goldeck,Rastislav Dzijak,Michal Rahm,Milan Vrábel,Dennis Svatunek,Jonathan Carlson,Hannes Mikula
标识
DOI:10.26434/chemrxiv-2024-gh8fz
摘要
Bioorthogonal bond-cleavage reactions have emerged as a powerful tool for precise spatiotemporal control of (bio)molecular function in the biological context. Among these chemistries, the tetrazine-triggered elimination of cleavable trans-cyclooctenes (click-to-release) stands out due to high reaction rates, versatility, and selectivity. Despite an increasing understanding of the underlying mechanisms, application of this reaction remains limited by the cumulative performance trade-offs (i.e., click kinetics, release kinetics, release yield) of existing tools. Efficient release has been restricted to tetrazine scaffolds with comparatively low click reactivity, while highly reactive aryl-tetrazines give only minimal release. By introducing hydroxyl groups onto aryl-tetrazine scaffolds, we have developed a new class of ‘bioorthogonal scissors’ with unique chemical performance. We demonstrate that hydroxyaryl-tetrazines achieve near-quantitative release upon accelerated click reaction with cleavable trans-cyclooctenes, as exemplified by click-triggered activation of a caged prodrug, intramitochondrial cleavage of a fluorogenic probe (turn-on) in live cells, and rapid intracellular bioorthogonal disassembly (turn-off) of a ligand-dye conjugate.
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