Diana Andrea, Truglio Giuseppina I, Petricci Elena, Lanari Daniela
Department of Pharmaceutical Sciences, University of Perugia, Via del Liceo 1, 06123, Perugia, Italy.
Department of Biotechnology, Chemistry and Pharmacy, University of Siena, Via Aldo Moro 2, 53100, Siena, Italy.
Org Biomol Chem. 2025 Jun 11;23(23):5441-5456. doi: 10.1039/d5ob00456j.
Cyclooctyne derivatives represent an important class of compounds that play a key role in bioorthogonal chemistry. The presence of an endocyclic triple bond endows these molecules with the necessary reactivity for strain-promoted azide-alkyne cycloaddition (SPAAC); however, stability issues may hamper their use in biological systems. Many research groups, with the aid of computational studies, are devoting their efforts to finding ideal cyclooctyne candidates that strike a delicate balance between reactivity and stability. In this context, providing reliable and general synthetic procedures for accessing such chemical scaffolds is of critical importance. This review covers the recent synthetic strategies found in the literature to achieve this goal. Specifically, six main methodologies are discussed, highlighting the synthetic pathways, the key precursors for each, the applicability to a wide range of cyclooctyne derivatives and the challenges encountered in fulfilling this target.
环辛炔衍生物是一类重要的化合物,在生物正交化学中起着关键作用。内环三键的存在赋予这些分子进行应变促进的叠氮化物-炔烃环加成反应(SPAAC)所需的反应活性;然而,稳定性问题可能会阻碍它们在生物系统中的应用。许多研究小组借助计算研究,致力于寻找在反应活性和稳定性之间达到微妙平衡的理想环辛炔候选物。在这种情况下,提供可靠且通用的合成方法来获取此类化学骨架至关重要。本综述涵盖了文献中为实现这一目标而发现的最新合成策略。具体而言,讨论了六种主要方法,重点介绍了合成途径、每种方法的关键前体、对广泛的环辛炔衍生物的适用性以及实现这一目标过程中遇到的挑战。