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首页> 外文期刊>ACS nano >Expanding the Nanoarchitectural Diversity Through Aromatic Di- and Tri-Peptide Coassembly: Nanostructures and Molecular Mechanisms
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Expanding the Nanoarchitectural Diversity Through Aromatic Di- and Tri-Peptide Coassembly: Nanostructures and Molecular Mechanisms

机译:通过芳香二肽和三肽共组装扩展纳米建筑多样性:纳米结构和分子机制。

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Molecular self-assembly is pivotal for the formation of ordered nanostructures, yet the structural diversity obtained by the use of a single type of building block is limited. Multicomponent coassembly, utilized to expand the architectural space, is principally based on empirical observations rather than rational design. Here we report large-scale molecular dynamics simulations of the coassembly of diphenylalanine (FF) and triphenylalanine (FFF) peptides at various mass ratios. Our simulations show that FF and FFF can co-organize into both canonical and noncanonical assemblies. Strikingly, toroid nanostructures, which were rarely observed for the extensively studied FF or FFF, are often seen in the FF-FFF coassembly simulations and later corroborated by scanning electron microscopy. Our simulations demonstrate a wide ratio-dependent variation of nanostructure morphologies including hollow and solid assemblies, much richer than those formed by each individual moiety. The hollow-solid structural transformation displays a discontinuous transition feature, and the toroids appear to be an obligatory intermediate for the structural transition. Interaction analysis reveals that the hollow-solid structural transition is mostly dominated by FF-FFF interactions, while the nanotoroid formation is determined by the competition between FF-water and FFF-water interactions. This study provides both structural and mechanistic insights into the coassembly of FF and FFF peptides, thus offering a molecular basis for the rational design of bionanomaterials utilizing peptide coassembly.
机译:分子自组装对于形成有序的纳米结构至关重要,但是通过使用单一类型的结构单元获得的结构多样性受到限制。用于扩大建筑空间的多组件组装主要是基于经验观察而非合理设计。在这里,我们报告了二苯丙氨酸(FF)和三苯丙氨酸(FFF)肽在各种质量比下的共组装的大规模分子动力学模拟。我们的仿真表明FF和FFF可以共同组织为规范和非规范程序集。令人惊讶的是,在广泛研究的FF或FFF中很少观察到的环形纳米结构经常在FF-FFF组装模拟中看到,后来通过扫描电子显微镜得到证实。我们的模拟表明,纳米结构形态的很大比例相关的变化,包括空心和实心的组装,比每个单独部分形成的丰富得多。中空-固体结构转变显示出不连续的转变特征,并且环面似乎是结构转变的强制性中间产物。相互作用分析表明,中空-固体结构转变主要由FF-FFF相互作用主导,而纳米环型的形成则取决于FF-水和FFF-水相互作用之间的竞争。这项研究提供了FF和FFF肽的协同装配的结构和机制的见解,从而为利用肽协同装配的生物纳米材料的合理设计提供了分子基础。

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