增强可活化环丙烯生物正交反应的氧化还原活化底物。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-11-04 Epub Date: 2024-10-23 DOI:10.1002/cbic.202400304
Wei-Siang Kao, Wei Huang, Yunlei Zhang, Kangqiao Wen, Andrea Meyer, Jorge Escorihuela, Scott T Laughlin
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引用次数: 0

摘要

生物正交化学已成为化学生物学的主流,随着蛋白质靶向和药物释放领域的最新进展,生物正交化学正在向临床领域进军。自该领域起步以来,主要重点一直是设计在复杂生物环境中具有良好选择性、反应性和稳定性的生物正交试剂。最近,化学家们为试剂注入了新的功能,如点击释放或光/酶可控反应性。我们之前开发了一种基于环丙烯的可控生物正交连接物,这种连接物在生理条件下具有出色的稳定性,并可通过与酶、具有生物学意义的小分子或跨越视觉光谱的光接触来触发与四嗪的反应。在此,为了提高反应活性并更好地了解这一系统,我们筛选了环丙烯的二烯反应伙伴。我们发现,环丙烯-醌对的反应速度是 1,2,4,5-四嗪反应的 26 倍。此外,我们还发现,环丙烯-醌对的反应可通过两种正交机制激活,即环丙烯上笼式基团的去除和醌的氧化/还原。最后,我们证明了这种笼式环丙烯-醌可用作生物正交成像工具,标记固定培养细胞的膜。
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Redox-Activated Substrates for Enhancing Activatable Cyclopropene Bioorthogonal Reactions.

Bioorthogonal chemistry has become a mainstay in chemical biology and is making inroads in the clinic with recent advances in protein targeting and drug release. Since the field's beginning, a major focus has been on designing bioorthogonal reagents with good selectivity, reactivity, and stability in complex biological environments. More recently, chemists have imbued reagents with new functionalities like click-and-release or light/enzyme-controllable reactivity. We have previously developed a controllable cyclopropene-based bioorthogonal ligation, which has excellent stability in physiological conditions and can be triggered to react with tetrazines by exposure to enzymes, biologically significant small molecules, or light spanning the visual spectrum. Here, to improve reactivity and gain a better understanding of this system, we screened diene reaction partners for the cyclopropene. We found that a cyclopropene-quinone pair is 26 times faster than reactions with 1,2,4,5-tetrazines. Additionally, we showed that the reaction of the cyclopropene-quinone pair can be activated by two orthogonal mechanisms: caging group removal on the cyclopropene and oxidation/reduction of the quinone. Finally, we demonstrated that this caged cyclopropene-quinone can be used as an imaging tool to label the membranes of fixed, cultured cells.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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