组合化学
化学
硫醇
肽库
膜
肽
药物发现
小分子
拟肽
半胱氨酸
细胞通透性
生物物理学
立体化学
生物化学
肽序列
生物
酶
基因
作者
Alexander L. Nielsen,Zsolt Bognár,Mothukuri Ganesh Kumar,Anne Zarda,Mischa Schüttel,Manuel L Merz,Xinjian Ji,E. J. Will,Monica Chinellato,Christian R. O. Bartling,Kristian Strømgaard,Laura Cendron,Alessandro Angelini,Christian Heinis
标识
DOI:10.1002/anie.202400350
摘要
Macrocycles offer an attractive format for drug development due to their good binding properties and potential to cross cell membranes. To efficiently identify macrocyclic ligands for new targets, methods for the synthesis and screening of large combinatorial libraries of small cyclic peptides were developed, many of them using thiol groups for efficient peptide macrocyclization. However, a weakness of these libraries is that invariant thiol‐containing building blocks such as cysteine are used, resulting in a region that does not contribute to library diversity but increases molecule size. Herein, we synthesized a series of structurally diverse thiol‐containing elements and used them for the combinatorial synthesis of a 2,688‐member library of small, structurally diverse peptidic macrocycles with unprecedented skeletal complexity. We then used this library to discover potent thrombin and plasma kallikrein inhibitors, some also demonstrating favorable membrane permeability. X‐ray structure analysis of macrocycle‐target complexes showed that the size and shape of the newly developed thiol elements are key for binding. The strategy and library format presented in this work significantly enhance structural diversity by allowing combinatorial modifications to a previously invariant region of peptide macrocycles, which may be broadly applied in the development of membrane permeable therapeutics.
科研通智能强力驱动
Strongly Powered by AbleSci AI