School of Chemical Sciences, The University of Auckland, 23 Symonds Street, Auckland 1010, New Zealand.
Maurice Wilkins Centre for Molecular Biodiscovery, The University of Auckland, 3 Symonds Street, Auckland, New Zealand.
Org Biomol Chem. 2023 Apr 12;21(15):3057-3072. doi: 10.1039/d2ob02262a.
Over the last few decades, design and discovery of chemical reactions that enable modification of proteins at pre-determined sites have been the focus of synthetic organic chemists. As an invaluable tool, the site-and chemoselective functionalization of peptides and proteins offers an exciting opportunity for creating high-value multicomponent conjugates with diverse applications in life sciences and pharmacology. In recent years, multiple strategies have emerged that target natural amino acids directly or convert them into other reactive species for further ligations. However, reactivity and selectivity are still key issues in the current state of chemical modification methodologies. Cysteine is one of the least abundant amino acids and exhibits unique chemistry of the thiol or thiolate group which makes it susceptible to a series of post-translational modifications. The thia-Michael "click" addition reactions, which can proceed under facile conditions provide a promising way for thiol-selective modification of cysteine-containing proteins. In this review, we summarize various reactions for cysteine-selective peptide and protein modification, focus on thia-Michael "click" addition reactions, elaborate on their historical perspective and mechanism, and highlight their applications in modifying biomolecules in a site-specific way.
在过去的几十年中,设计和发现能够在预定位置修饰蛋白质的化学反应一直是合成有机化学家关注的焦点。作为一种非常有价值的工具,肽和蛋白质的位点和化学选择性功能化提供了一个令人兴奋的机会,可以创建具有多种应用的高价值多组分缀合物,这些应用在生命科学和药理学中具有广泛的应用。近年来,已经出现了多种策略,可以直接针对天然氨基酸,或将其转化为其他反应性物质以进行进一步的连接。然而,在当前的化学修饰方法学中,反应性和选择性仍然是关键问题。半胱氨酸是最不丰富的氨基酸之一,具有巯基或硫醇盐基团的独特化学性质,这使其容易受到一系列翻译后修饰的影响。噻吩-Michael“点击”加成反应可以在温和的条件下进行,为含半胱氨酸的蛋白质的硫醇选择性修饰提供了一种很有前途的方法。在这篇综述中,我们总结了各种用于半胱氨酸选择性肽和蛋白质修饰的反应,重点介绍了噻吩-Michael“点击”加成反应,阐述了其历史背景和机制,并强调了它们在特异性修饰生物分子方面的应用。