Institute of Organic Chemistry, Karlsruhe Institute of Technology, Fritz-Haber-Weg 6, 76131 Karlsruhe, Germany.
Institute of Physical Chemistry, Karlsruhe Institute of Technology, Kaiserstr. 12, 76131 Karlsruhe, Germany.
Molecules. 2020 Dec 31;26(1):150. doi: 10.3390/molecules26010150.
Peptoids, or poly--substituted glycines, are characterised by broad structural diversity. Compared to peptides, they are less restricted in rotation and lack backbone-derived H bonding. Nevertheless, certain side chains force the peptoid backbone into distinct conformations. Designable secondary structures like helices or nanosheets arise from this knowledge. Herein, we report the copper-catalysed alkyne-azide cycloaddition (CuAAC) of macrocycles to form innovative tube-like tricyclic peptoids, giving access to host-guest chemistry or storage applications. Different linker systems make the single tubes tuneable in size and enable modifications within the gap. An azobenzene linker, which is reversibly switchable in conformation, was successfully incorporated and allowed for light-triggered changes of the entire tricyclic structure.
肽缩氨酸,或聚--取代甘氨酸,具有广泛的结构多样性。与肽相比,它们的旋转限制较小,缺乏源自骨架的氢键。然而,某些侧链迫使肽缩氨酸骨架呈现出独特的构象。基于这一知识,可以设计出类似螺旋或纳米片的可设计的二级结构。在此,我们报告了铜催化的炔烃-叠氮化物环加成(CuAAC)大环的反应,形成了新颖的管状三环肽缩氨酸,为主体-客体化学或存储应用提供了途径。不同的连接子系统可调节单个管的大小,并可在间隙内进行修饰。成功地引入了一个可在构象中可逆切换的偶氮苯连接子,允许进行光触发的整个三环结构的变化。