肽
纤维
纳米技术
化学
生物物理学
材料科学
生物系统
计算生物学
计算机科学
生物化学
生物
作者
Dan Cheng,Xin Chen,Weijia Zhang,Pan Guo,Wenhui Xue,Junfan Xia,Siyu Wu,Junhui Shi,Dan Ma,Xiaobing Zuo,Bin Jiang,Shaowei Li,Ningshao Xia,Yun‐Bao Jiang,Vincent P. Conticello,Tao Jiang
标识
DOI:10.1002/anie.202303684
摘要
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.
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