Department of Chemistry and Pharmacy, Ludwig-Maximilians University Munich, Butenandtstrasse 5-13, 81377, Munich, Germany.
Department of Bioorganic and Medicinal Chemistry, Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Flemingovo nam. 2, 16610, Prague 6, Czech Republic.
Top Curr Chem (Cham). 2016 Feb;374(1):9. doi: 10.1007/s41061-016-0010-x. Epub 2016 Feb 1.
Bioorthogonal chemistry has emerged as a new powerful tool that facilitates the study of structure and function of biomolecules in their native environment. A wide variety of bioorthogonal reactions that can proceed selectively and efficiently under physiologically relevant conditions are now available. The common features of these chemical reactions include: fast kinetics, tolerance to aqueous environment, high selectivity and compatibility with naturally occurring functional groups. The design and development of new chemical transformations in this direction is an important step to meet the growing demands of chemical biology. This chapter aims to introduce the reader to the field by providing an overview on general principles and strategies used in bioorthogonal chemistry. Special emphasis is given to cycloaddition reactions, namely to 1,3-dipolar cycloadditions and Diels-Alder reactions, as chemical transformations that play a predominant role in modern bioconjugation chemistry. The recent advances have established these reactions as an invaluable tool in modern bioorthogonal chemistry. The key aspects of the methodology as well as future outlooks in the field are discussed.
生物正交化学已经成为一种新的强大工具,可促进在天然环境中对生物分子的结构和功能进行研究。现在有各种各样的生物正交反应,可以在生理相关条件下选择性和有效地进行。这些化学反应的共同特点包括:快速动力学、对水相环境的耐受性、高选择性以及与天然存在的官能团的兼容性。在这一方向上设计和开发新的化学转化是满足化学生物学日益增长需求的重要步骤。本章旨在通过提供生物正交化学中使用的一般原理和策略的概述,向读者介绍该领域。特别强调环加成反应,即 1,3-偶极环加成反应和 Diels-Alder 反应,因为这些化学转化在现代生物缀合化学中起着主要作用。最近的进展使这些反应成为现代生物正交化学中不可或缺的工具。讨论了该方法的关键方面以及该领域的未来展望。