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自组装与共组装在肽两亲超分子纳米结构中的比较。

Self-Sorting vs Coassembly in Peptide Amphiphile Supramolecular Nanostructures.

机构信息

Department of Biomedical Engineering, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States.

Department of Materials Science and Engineering, Northwestern University, 2220 Campus Drive, Evanston, Illinois 60208, United States.

出版信息

ACS Nano. 2024 Jun 18;18(24):15878-15887. doi: 10.1021/acsnano.4c03083. Epub 2024 Jun 7.

Abstract

The functionality of supramolecular nanostructures can be expanded if systems containing multiple components are designed to either self-sort or mix into coassemblies. This is critical to gain the ability to craft self-assembling materials that integrate functions, and our understanding of this process is in its early stages. In this work, we have utilized three different peptide amphiphiles with the capacity to form β-sheets within supramolecular nanostructures and found binary systems that self-sort and others that form coassemblies. This was measured using atomic force microscopy to reveal the nanoscale morphology of assemblies and confocal laser scanning microscopy to determine the distribution of fluorescently labeled monomers. We discovered that PA assemblies with opposite supramolecular chirality self-sorted into chemically distinct nanostructures. In contrast, the PA molecules that formed a mixture of right-handed, left-handed, and flat nanostructures on their own were able to coassemble with the other PA molecules. We attribute this phenomenon to the energy barrier associated with changing the handedness of a β-sheet twist in a coassembly of two different PA molecules. This observation could be useful for designing biomolecular nanostructures with dual bioactivity or interpenetrating networks of PA supramolecular assemblies.

摘要

如果设计包含多个组件的系统以自分类或混合成共组装体,那么超分子纳米结构的功能可以得到扩展。这对于获得能够集成功能的自组装材料的能力至关重要,而我们对这个过程的理解还处于早期阶段。在这项工作中,我们使用了三种不同的肽两亲物,它们能够在超分子纳米结构中形成β-折叠,并发现了自分类的二元系统和形成共组装体的二元系统。这是通过原子力显微镜测量来揭示组装体的纳米级形态,以及通过共焦激光扫描显微镜来确定荧光标记单体的分布来实现的。我们发现,具有相反超分子手性的 PA 组装体自分类成化学上不同的纳米结构。相比之下,那些自身形成右手、左手和平坦纳米结构混合物的 PA 分子能够与其他 PA 分子共组装。我们将这种现象归因于与改变两个不同 PA 分子共组装体中β-折叠扭转的手性相关的能量势垒。这种观察结果对于设计具有双重生物活性的生物分子纳米结构或 PA 超分子组装体的互穿网络可能是有用的。

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