超分子化学
两亲性
肽
化学
氨基酸
芳香族氨基酸
组合化学
立体化学
生物化学
结晶学
有机化学
共聚物
晶体结构
聚合物
作者
Ayato Higuchi,Arka Som,Rie Wakabayashi,Masahiro Goto,Noriho Kamiya,Pol Besenius
标识
DOI:10.1002/chem.202404233
摘要
Abstract Understanding the mechanism of self‐assembly driven by non‐covalent interactions is crucial for designing supramolecular materials with desired properties. Here we investigate the self‐assembly of aromatic peptide amphiphiles, Fmoc‐L 2 QG and Fmoc‐L 3 QG using a combination of spectroscopic, transmission electron and superresolution optical microscopy techniques. Our results show that Fmoc‐L 2 QG leads to concentration‐dependent assembly, forming fibrous assemblies at low concentrations and supramolecular droplets via liquid‐liquid phase separation (LLPS) at higher concentrations. Mechanical activation using for example ultrasonication triggered the transition from metastable droplets to fibre morphologies of Fmoc‐L 2 QG. In contrast, Fmoc‐L 3 QG followed both on‐pathway and off‐pathway routes, resulting in the formation of fibrous morphologies regardless of concentration. Seeding experiments revealed that homo‐seeds of the same peptide sequence accelerated the on‐pathway process, while hetero‐seeds of a mismatched peptide sequences accelerated the off‐pathway process, highlighting the competing nature of the complex assembly profile. These findings demonstrate the significant impact of single amino acid insertion on the supramolecular assembly process of oligopeptide monomers, and highlight the potential for controlling the structure and dynamics of peptide materials. Pathway engineering of oligopeptide building blocks and multidomain supramolecular monomers will open new avenues in tailor‐made and customizable supramolecular biomaterials.
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