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在自组装肽进行分子功能化后保留结构不稳定的肽纳米片。

Preserving Structurally Labile Peptide Nanosheets After Molecular Functionalization of the Self-Assembling Peptides.

机构信息

Department of Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, The MOE Key Laboratory of Spectrochemical Analysis and Instrumentation, Xiamen, 361005, China.

X-ray Science Division, Argonne National Laboratory, Lemont, IL 60439, USA.

出版信息

Angew Chem Int Ed Engl. 2024 Jan 8;63(2):e202315296. doi: 10.1002/anie.202315296. Epub 2023 Dec 6.

DOI:10.1002/anie.202315296
PMID:38009674
Abstract

A significant challenge in creating supramolecular materials is that conjugating molecular functionalities to building blocks often results in dissociation or undesired morphological transformation of their assemblies. Here we present a facile strategy to preserve structurally labile peptide assemblies after molecular modification of the self-assembling peptides. Sheet-forming peptides are designed to afford a staggered alignment with the segments bearing chemical modification sites protruding from the sheet surfaces. The staggered assembly allows for simultaneous separation of attached molecules from each other and from the underlying assembly motifs. Strikingly, using PEGs as the external molecules, PEG - and PEG -peptide conjugates directly self-associate into nanosheets with the PEG chains localized on the sheet surfaces. In contrast, the sheet formation based on in-register lateral packing of peptides does not recur upon the peptide PEGylation. This strategy allows for fabrication of densely modified assemblies with a variety of molecules, as demonstrated using biotin (hydrophobic molecule), c(RGDfK) (cyclic pentapeptide), and nucleic acid aptamer (negatively charged ssDNA). The staggered co-assembly also enables extended tunability of the amount/density of surface molecules, as exemplified by screening ligand-appended assemblies for cell targeting. This study paves the way for functionalization of historically challenging fragile assemblies while maintaining their overall morphology.

摘要

在创建超分子材料时,一个重大的挑战是,将分子功能连接到构建基块上,通常会导致它们的组装体解离或不期望的形态转变。在这里,我们提出了一种简便的策略,可以在对自组装肽进行分子修饰后,保持结构不稳定的肽组装体。片状形成肽被设计成提供带有化学修饰位点的片段从片层表面突出的交错排列。交错组装允许附着的分子彼此以及与底层组装基序同时分离。引人注目的是,使用 PEG 作为外部分子,PEG-和 PEG-肽缀合物直接自组装成纳米片,PEG 链定位于片层表面。相比之下,基于肽 PEG 化的肽的对位层叠排列不会再次形成片状。这种策略允许用各种分子制造高度修饰的组装体,如使用生物素(疏水分子)、c(RGDfK)(环五肽)和核酸适体(带负电荷的 ssDNA)进行演示。交错共聚还可以扩展表面分子的数量/密度的可调节性,例如通过筛选配体附加的组装体用于细胞靶向。这项研究为功能化历史上具有挑战性的脆弱组装体铺平了道路,同时保持了它们的整体形态。

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