Ortho-functionalized pyridinyl-tetrazines break the inverse correlation between click reactivity and cleavage yields in click-to-release chemistry

IF 5.9 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Communications Chemistry Pub Date : 2024-12-19 DOI:10.1038/s42004-024-01392-z
Ron M. Versteegen, Raffaella Rossin, Ivo A. W. Filot, Freek J. M. Hoeben, Arthur H. A. M. van Onzen, Henk M. Janssen, Marc S. Robillard
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Abstract

The bioorthogonal tetrazine-triggered cleavage of trans-cyclooctene(TCO)-linked payloads has strong potential for widespread use in drug delivery and in particular in click-cleavable antibody-drug conjugates (ADCs). However, clinical translation is hampered by an inverse correlation between click reactivity and payload release yield, requiring high doses of less reactive tetrazines to drive in vivo TCO reactions and payload release to completion. Herein we report that the cause for the low release when using the highly reactive bis-(2-pyridinyl)-tetrazine is the stability of the initially formed 4,5-dihydropyridazine product, precluding tautomerization to the releasing 1,4-dihydropyridazine tautomer. We demonstrate that efficient tautomerization and payload elimination can be achieved by ortho-substituting bis-pyridinyl-tetrazines with hydrogen-bonding hydroxyl or amido groups, achieving a.o. release yields of 96% with 18-fold more reactive tetrazines. Applied to on-tumor activation of a click-cleavable ADC in mice, these tetrazines afforded near-quantitative ADC conversion at a ca. 10- to 20-fold lower dose than what was previously needed, resulting in a strong therapeutic response. The bioorthogonal tetrazine-triggered cleavage of trans-cyclooctene-linked payloads has strong potential in click-to-release drug delivery, however, an inverse correlation between click reactivity and payload release yield is hampering their clinical translation. Here, the authors develop ortho-substituted bis-pyridinyl-tetrazines with hydrogen-bonding hydroxyl or amido groups for efficient tautomerization and payload elimination, achieving release yields of 96% with 18-fold more reactive tetrazines.

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邻位功能化吡啶基四嗪打破了点击释放化学中点击反应活性与解理产率之间的负相关关系
生物正交四嗪触发的反式环烯(TCO)连接的有效载荷的切割在药物递送中具有广泛应用的潜力,特别是在可点击切割的抗体-药物偶联物(adc)中。然而,临床转化受到点击反应性和有效载荷释放率之间的负相关关系的阻碍,需要高剂量的活性较低的四嗪来驱动体内TCO反应和有效载荷释放完成。本文报道了高活性双-(2-吡啶基)-四嗪释放低的原因是最初形成的4,5-二氢吡啶产物的稳定性,阻止了向释放的1,4-二氢吡啶互变异构体的异构化。我们证明了用氢键羟基或酰胺基团邻位取代双吡啶基四嗪可以实现高效的互变异构化和有效载荷消除,使反应性提高18倍的四嗪的a.o.释放率达到96%。应用于小鼠中点击可切割ADC的肿瘤激活,这些四嗪提供了接近定量的ADC转换,比以前所需的剂量低10至20倍,导致强烈的治疗反应。生物正交四嗪触发的反式环辛烯连接有效载荷的裂解在点击释放药物递送中具有很强的潜力,然而,点击反应性与有效载荷释放率之间的负相关阻碍了它们的临床转化。在这里,作者开发了邻取代的双吡啶基四嗪,具有氢键羟基或氨基基团,用于有效的互变异构化和有效载荷消除,释放率达到96%,反应性提高18倍。
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来源期刊
Communications Chemistry
Communications Chemistry Chemistry-General Chemistry
CiteScore
7.70
自引率
1.70%
发文量
146
审稿时长
13 weeks
期刊介绍: Communications Chemistry is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the chemical sciences. Research papers published by the journal represent significant advances bringing new chemical insight to a specialized area of research. We also aim to provide a community forum for issues of importance to all chemists, regardless of sub-discipline.
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