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无铜点击化学的生物医学应用: , ,以及 。

Biomedical applications of copper-free click chemistry: , , and .

作者信息

Kim Eunha, Koo Heebeom

机构信息

Department of Molecular Science and Technology , Ajou University , Suwon 16499 , Republic of Korea.

Department of Medical Life Sciences , College of Medicine , The Catholic University of Korea , 222 Banpo-daero, Seocho-gu , Seoul , 06591 , Republic of Korea . Email:

出版信息

Chem Sci. 2019 Aug 16;10(34):7835-7851. doi: 10.1039/c9sc03368h. eCollection 2019 Sep 14.

Abstract

Recently, click chemistry has provided important advances in biomedical research fields. Particularly, copper-free click chemistry including strain-promoted azide-alkyne cycloaddition (SPAAC) and inverse-electron-demand Diels-Alder (iEDDA) reactions enable fast and specific chemical conjugation under aqueous conditions without the need for toxic catalysts. Click chemistry has resulted in a change of paradigm, showing that artificial chemical reactions can occur on cell surfaces, in cell cytosol, or within the body, which is not easy with most other chemical reactions. Click chemistry allows specific labelling of cellular target proteins and studying of drug target engagement with drug surrogates in live cells. Furthermore, cellular membrane lipids and proteins could be selectively labelled with click chemistry and cells could be adhered together using click chemistry. Click chemistry enables efficient and effective molecular imaging and drug delivery for diagnosis and therapy. Click chemistry can be used to develop molecular tools to understand tissue development, diagnosis of diseases, and therapeutic monitoring. Overall, the results from research to date suggest that click chemistry has emerged as a valuable tool in biomedical fields as well as in organic chemistry.

摘要

最近,点击化学在生物医学研究领域取得了重要进展。特别是,无铜点击化学,包括应变促进的叠氮化物-炔烃环加成反应(SPAAC)和逆电子需求的狄尔斯-阿尔德反应(iEDDA),能够在水性条件下实现快速且特异性的化学共轭,而无需使用有毒催化剂。点击化学带来了范式的转变,表明人工化学反应可以在细胞表面、细胞胞质溶胶或体内发生,而这对大多数其他化学反应来说并不容易。点击化学允许对细胞靶蛋白进行特异性标记,并在活细胞中研究药物靶点与药物替代物的结合。此外,细胞膜脂质和蛋白质可以用点击化学进行选择性标记,并且细胞可以通过点击化学黏附在一起。点击化学能够实现高效的分子成像和药物递送,用于诊断和治疗。点击化学可用于开发分子工具,以了解组织发育、疾病诊断和治疗监测。总体而言,迄今为止的研究结果表明,点击化学已成为生物医学领域以及有机化学中的一种有价值的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4cc/6855312/d2e4b9415d1f/c9sc03368h-f1.jpg

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