Center for Systems Biology , Massachusetts General Hospital , Boston , Massachusetts 02114 , United States.
Institute of Applied Synthetic Chemistry , Vienna University of Technology (TU Wien) , Wien 1040 , Austria.
J Am Chem Soc. 2018 Mar 14;140(10):3603-3612. doi: 10.1021/jacs.7b11217. Epub 2018 Feb 14.
Recent developments in bond cleavage reactions have expanded the scope of bioorthogonal chemistry beyond click ligation and enabled new strategies for probe activation and therapeutic delivery. These applications, however, remain in their infancy, with further innovations needed to achieve the efficiency required for versatile and broadly useful tools in vivo. Among these chemistries, the tetrazine/ trans-cyclooctene click-to-release reaction has exemplary kinetics and adaptability but achieves only partial release and is incompletely understood, which has limited its application. Investigating the mechanistic features of this reaction's performance, we discovered profound pH sensitivity, exploited it with acid-functionalized tetrazines that both enhance and markedly accelerate release, and ultimately uncovered an unexpected dead-end isomer as the reason for poor release. Implementing facile methods to prevent formation of this dead end, we have achieved exceptional efficiency, with essentially complete release across the full scope of physiologic pH, potentiating drug-delivery strategies and expanding the dynamic range of bioorthogonal on/off control.
近年来,键断裂反应的发展扩大了生物正交化学的范围,超越了点击连接,并为探针激活和治疗药物传递提供了新的策略。然而,这些应用仍处于起步阶段,需要进一步的创新,以实现体内多功能和广泛应用工具所需的效率。在这些化学物质中,四嗪/反式环辛烯点击释放反应具有典范的动力学和适应性,但仅实现部分释放,并且不完全理解,这限制了其应用。研究该反应性能的机制特征,我们发现了显著的 pH 敏感性,利用酸功能化的四嗪增强和显著加速释放,并最终发现了一种意想不到的末端异构体作为释放不良的原因。通过实施简单的方法来防止这种末端的形成,我们实现了极高的效率,在整个生理 pH 范围内基本上完全释放,增强了药物传递策略,并扩大了生物正交开/关控制的动态范围。