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Hierarchical Self-Assembly of Peptides and its Applications in Bionanotechnology

机译:肽的分层自组装及其在Bionanotechnology中的应用

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摘要

Self-assembled structures obtained from organic molecules have shown great potential for applications in a wide range of domains. In this context, short peptides prove to be a particularly versatile class of organic building blocks for self-assembled materials. These species afford the biocompatibility and polymorphic richness typical of proteins while allowing synthetic availability and robustness typical of smaller molecules. At the nano-to-mesoscale, the architectures obtained from peptide units exhibit stability and a large variety of morphologies, the most common of which are nanotubes, nanoribbons, and nanowires. This review describes the formation of peptide-based selfassembled structures triggered by different stimuli (e.g., ionic strength, pH, and polarity), and the interactions that drive the assembling processes. It is surveyed how judicious molecular design is exploited to impart favourable assembling properties to afford systems with desired characteristics. A large body of literature provides the experimental and in silico data to predict self-assembly in a given peptide system and obtain different supramolecular organizations for applications in a wide range of fields, from transport to sensing, from catalysis to drug delivery and tissue regeneration.
机译:从有机分子获得的自组装结构已经显示出广泛的结构域中的应用的巨大潜力。在这种情况下,短肽证明是用于自组装材料的特别通用的有机结构块。这些物种提供典型的蛋白质的生物相容性和多晶型丰富,同时允许典型的较小分子的合成可用性和鲁棒性。在纳米至Mesoscale中,从肽单元获得的架构表现出稳定性和各种形态,其中最常见的是纳米管,纳米波纹和纳米线。该综述描述了形成由不同刺激(例如离子强度,pH和极性)引发的肽的自配叠结构的形成,以及驱动组装过程的相互作用。调查了如何利用明智的分子设计来赋予有利的组装性能,以提供具有所需特性的系统。大量文献提供了实验性和硅数据,以预测给定的肽系统中的自组装,并获得不同的超分子组织,用于从运输到传感,从催化到药物递送和组织再生的应用中的应用。

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