Department of Chemistry, Collage of Chemistry and Chemical Engineering, Xiamen University, The MOE Key Laboratory of Spectrochemical Analysis and Instrumentation, Xiamen, 361005, China.
State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, National Institute of Diagnostics and Vaccine Development in Infectious Disease, School of Life Sciences, School of Public Health, Xiamen University, Xiamen, 361102, China.
Angew Chem Int Ed Engl. 2023 May 22;62(22):e202303684. doi: 10.1002/anie.202303684. Epub 2023 Apr 25.
Advanced applications of biomacromolecular assemblies require a stringent degree of control over molecular arrangement, which is a challenge to current synthetic methods. Here we used a neighbor-controlled patterning strategy to build multicomponent peptide fibrils with an unprecedented capacity to manipulate local composition and peptide positions. Eight peptides were designed to have regulable nearest neighbors upon co-assembly, which, by simulation, afforded 412 different patterns within fibrils, with varied compositions and/or peptide positions. The fibrils with six prescribed patterns were experimentally constructed with high accuracy. The controlled patterning also applies to functionalities appended to the peptides, as exemplified by arranging carbohydrate ligands at nanoscale precision for protein recognition. This study offers a route to molecular editing of inner structures of peptide assemblies, prefiguring the uniqueness and richness of patterning-based material design.
生物大分子组装的高级应用需要对分子排列进行严格的控制,这对当前的合成方法来说是一个挑战。在这里,我们使用邻位控制的图案化策略来构建具有前所未有的局部组成和肽位操控能力的多组分肽原纤维。设计了 8 种肽,使其在共组装时具有可调节的最近邻,通过模拟,在原纤维内提供了 412 种不同的图案,具有不同的组成和/或肽位。用高精度实验构建了具有 6 种预定图案的原纤维。这种受控图案化也适用于添加到肽上的功能,例如以纳米级精度排列碳水化合物配体以进行蛋白质识别。本研究为肽组装体内部结构的分子编辑提供了一种途径,预示着基于图案化的材料设计的独特性和丰富性。