综述

生物正交标记反应研究进展

  • 杨麦云 ,
  • 陈鹏
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  • 北京大学化学生物学系 北大-清华生命科学联合中心 北京 100871

收稿日期: 2015-03-29

  网络出版日期: 2015-06-29

基金资助

项目受国家自然科学基金委重大研究计划培育(Nos. 21225206, 91313301)资助.

Progress in the Bioorthogonal Labeling Reactions

  • Yang Maiyun ,
  • Chen Peng R.
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  • Department of Chemical Biology, Peking University, Peking-Tsinghua Center for Life sciences, Beijing 100871

Received date: 2015-03-29

  Online published: 2015-06-29

Supported by

Project supported by the National Natural Science Foundation of China (Nos. 21225206, 91313301).

摘要

对活体生物大分子进行特异性标记是一项具有挑战性的工作, 它要求这类化学反应能够在生理条件下高效特异地进行, 不会与生物体系中存在的各种活性物质发生副反应. 最近十几年开发的生物正交反应能够比较好地满足这些要求, 它们在生物分子标记方面的应用拓展了我们对细胞内生物体系的理解. 主要介绍那些应用广泛且可以用于活体细胞标记的生物正交反应. 重点介绍通过位点特异性引入生物正交官能团来进行选择性标记细胞内目标蛋白质的策略. 同时, 我们根据使用催化剂类型对这些生物正交反应进行分类, 并且列表比较它们的差异, 以便于研究者挑选合适的反应. 最后对生物正交反应的开发和进一步应用进行了展望.

本文引用格式

杨麦云 , 陈鹏 . 生物正交标记反应研究进展[J]. 化学学报, 2015 , 73(8) : 783 -792 . DOI: 10.6023/A15030214

Abstract

Selective labeling of biomolecules inside living cells is a challenging task, which requires the reaction to proceed efficiently and selectively under physiological condition without interfering with active species presented in the living systems. Bioorthogonal reactions, which were developed in the past decade, successfully meet these requirements and their applications in biomolecule labeling have expanded our understanding of cellular process. Considerable attention has been focused on the optimization of a few known bioorthogonal reactions, including discovery of new ligands and privileged substrates for transition metal catalyzed reactions, and the use of strain promoted functional group for substrate activation in the cycloaddition reactions. In addition, new bioorthogonal reactions, including the fluorogenic reactions, have also been emerged in the past few years. Progress has also been made toward the development of mutually exclusive bioorthogonal reactions and their application for multiple labeling of biomolecules inside living cells. Here we review the most widely used bioorthogonal labeling reactions, drawing particular attention to those that have been used in living systems. We focused on the selective labeling of target proteins by means of site-specific introduction of a functional group followed by the bioorthogonal reaction with a complementary functional group. We categorized these reactions into three different groups based on the catalysts used in the reactions: metal catalyzed reactions, photo induced reactions and reactions without catalyst. The biological applications of these bioorthogonal reactions have also been briefly introduced. We also listed the rate constants and main references of these reactions to facilitate researchers for choosing the appropriate one. Lastly, we highlight ongoing challenges in developing new bioorthogonal reactions and their application to study complex biological systems.

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