Adhikari Karuna, Vanermen Maarten, Da Silva Gustavo, Van den Wyngaert Tim, Augustyns Koen, Elvas Filipe
Laboratory of Medicinal Chemistry, University of Antwerp, Antwerp, Belgium.
Molecular Imaging and Radiology, University of Antwerp, Antwerp, Belgium.
EJNMMI Radiopharm Chem. 2024 Jun 6;9(1):47. doi: 10.1186/s41181-024-00275-x.
Trans-cyclooctenes (TCOs) are highly strained alkenes with remarkable reactivity towards tetrazines (Tzs) in inverse electron-demand Diels-Alder reactions. Since their discovery as bioorthogonal reaction partners, novel TCO derivatives have been developed to improve their reactivity, stability, and hydrophilicity, thus expanding their utility in diverse applications.
TCOs have garnered significant interest for their applications in biomedical settings. In chemical biology, TCOs serve as tools for bioconjugation, enabling the precise labeling and manipulation of biomolecules. Moreover, their role in nuclear medicine is substantial, with TCOs employed in the radiolabeling of peptides and other biomolecules. This has led to their utilization in pretargeted nuclear imaging and therapy, where they function as both bioorthogonal tags and radiotracers, facilitating targeted disease diagnosis and treatment. Beyond these applications, TCOs have been used in targeted cancer therapy through a "click-to-release" approach, in which they act as key components to selectively deliver therapeutic agents to cancer cells, thereby enhancing treatment efficacy while minimizing off-target effects. However, the search for a suitable TCO scaffold with an appropriate balance between stability and reactivity remains a challenge.
This review paper provides a comprehensive overview of the current state of knowledge regarding the synthesis of TCOs, and its challenges, and their development throughout the years. We describe their wide ranging applications as radiolabeled prosthetic groups for radiolabeling, as bioorthogonal tags for pretargeted imaging and therapy, and targeted drug delivery, with the aim of showcasing the versatility and potential of TCOs as valuable tools in advancing biomedical research and applications.
反式环辛烯(TCOs)是高度张力的烯烃,在逆电子需求的狄尔斯-阿尔德反应中对四嗪(Tzs)具有显著的反应活性。自被发现作为生物正交反应伙伴以来,已开发出新型TCO衍生物以提高其反应活性、稳定性和亲水性,从而扩大其在各种应用中的用途。
TCOs因其在生物医学领域的应用而备受关注。在化学生物学中,TCOs作为生物共轭工具,能够对生物分子进行精确标记和操作。此外,它们在核医学中也发挥着重要作用,用于肽和其他生物分子的放射性标记。这使得它们在预靶向核成像和治疗中得到应用,在其中它们既作为生物正交标签又作为放射性示踪剂,有助于靶向疾病的诊断和治疗。除了这些应用外,TCOs还通过“点击释放”方法用于靶向癌症治疗,在该方法中它们作为关键成分将治疗剂选择性地递送至癌细胞,从而提高治疗效果同时将脱靶效应降至最低。然而,寻找一种在稳定性和反应活性之间具有适当平衡的合适TCO支架仍然是一项挑战。
本文综述了有关TCOs合成的当前知识状态、其面临的挑战以及多年来的发展情况。我们描述了它们作为放射性标记的放射性标记基团、作为预靶向成像和治疗的生物正交标签以及靶向药物递送等广泛应用,旨在展示TCOs作为推进生物医学研究和应用的有价值工具的多功能性和潜力。