Institute of Chemical Sciences and Engineering, School of Basic Sciences, École Polytechnique Fédérale de Lausanne (EPFL), CH-1015, Lausanne, Switzerland.
Department of Biology, University of Padova, 35131, Padova, Italy.
Angew Chem Int Ed Engl. 2024 Jun 21;63(26):e202400350. doi: 10.1002/anie.202400350. Epub 2024 May 24.
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.
大环化合物因其良好的结合特性和穿透细胞膜的潜力,成为药物开发的一种有吸引力的形式。为了有效地鉴定针对新靶标的大环配体,开发了用于合成和筛选大型组合文库中小环肽的方法,其中许多方法使用硫醇基团进行有效的肽大环化。然而,这些文库的一个弱点是使用不变的含硫醇构建块,如半胱氨酸,导致不增加文库多样性但增加分子大小的区域。在此,我们合成了一系列结构多样的含硫醇元件,并将其用于组合合成具有前所未有的骨架复杂性的 2688 个成员的小结构多样肽类大环化合物文库。然后,我们使用该文库发现了有效的凝血酶和血浆激肽释放酶抑制剂,其中一些也表现出良好的膜通透性。大环化合物-靶标复合物的 X 射线结构分析表明,新开发的硫醇元件的大小和形状是结合的关键。本工作中提出的策略和文库格式通过允许对肽大环化合物中以前不变的区域进行组合修饰,显著提高了结构多样性,这可能广泛应用于膜通透性治疗剂的开发。