Department of Chemistry, State Key Laboratory of Synthetic Chemistry , The University of Hong Kong , Pokfulam Road , Hong Kong SAR , P. R. China.
School of Chemistry , University of Edinburgh , Edinburgh EH8 9LE , United Kingdom.
Chem Rev. 2019 Sep 11;119(17):9971-10001. doi: 10.1021/acs.chemrev.8b00657. Epub 2019 Jul 18.
Cyclic peptides have been attracting a lot of attention in recent decades, especially in the area of drug discovery, as more and more naturally occurring cyclic peptides with diverse biological activities have been discovered. Chemical synthesis of cyclic peptides is essential when studying their structure-activity relationships. Conventional peptide cyclization methods via direct coupling have inherent limitations, like the susceptibility to epimerization at the C-terminus, poor solubility of fully protected peptide precursors, and low yield caused by oligomerization. In this regard, chemoselective ligation-mediated cyclization methods have emerged as effective strategies for cyclic peptide synthesis. The toolbox for cyclic peptide synthesis has been expanded substantially in the past two decades, allowing more efficient synthesis of cyclic peptides with various scaffolds and modifications. This Review will explore different chemoselective ligation technologies used for cyclic peptide synthesis that generate both native and unnatural peptide linkages. The practical issues and limitations of different methods will be discussed. The advance in cyclic peptide synthesis will benefit the biological and medicinal study of cyclic peptides, an important class of macrocycles with potentials in numerous fields, notably in therapeutics.
在过去的几十年中,环状肽一直受到广泛关注,尤其是在药物发现领域,因为越来越多具有不同生物活性的天然环状肽被发现。当研究它们的结构-活性关系时,环状肽的化学合成是必不可少的。通过直接偶联的传统肽环化方法存在固有局限性,例如 C 末端的差向异构化易感性、完全保护的肽前体的低溶解度以及由于低聚物化导致的低产率。在这方面,化学选择性连接介导的环化方法已成为环状肽合成的有效策略。在过去的二十年中,环状肽合成的工具包已经大大扩展,允许更有效地合成具有各种支架和修饰的环状肽。这篇综述将探讨用于生成天然和非天然肽键的环状肽合成的不同化学选择性连接技术。将讨论不同方法的实际问题和局限性。环状肽合成的进展将有益于环状肽的生物学和医学研究,环状肽是一类具有多种领域应用潜力的大环化合物,特别是在治疗学方面。