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Temperature-induced reversible self-assembly of diphenylalanine peptide and the structural transition from organogel to crystalline nanowires

机译:温度诱导的二苯丙氨酸肽的可逆自组装以及从有机凝胶到结晶纳米线的结构转变

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摘要

Controlling the self-assembly of diphenylalanine peptide (FF) into various nanoarchitectures has received great amounts of attention in recent years. Here, we report the temperature-induced reversible self-assembly of diphenylalanine peptide to microtubes, nanowires, or organogel in different solvents. We also find that the organogel in isopropanol transforms into crystalline flakes or nanowires when the temperature increases. The reversible self-assembly in polar solvents may be mainly controlled by electronic and aromatic interactions between the FF molecules themselves, which is associated with the dissociation equilibrium and significantly influenced by temperature. We found that the organogel in the isopropanol solvent made a unique transition to crystalline structures, a process that is driven by temperature and may be kinetically controlled. During the heating-cooling process, FF preferentially self-assembles to metastable nanofibers and organogel. They further transform to thermodynamically stable crystal structures via molecular rearrangement after introducing an external energy, such as the increasing temperature used in this study. The strategy demonstrated in this study provides an efficient way to controllably fabricate smart, temperature-responsive peptide nanomaterials and enriches the understanding of the growth mechanism of diphenylalanine peptide nanostructures.
机译:近年来,控制二苯丙氨酸肽(FF)的自组装成各种纳米结构受到了广泛的关注。在这里,我们报告了温度诱导的二苯丙氨酸肽可逆自组装到不同溶剂中的微管,纳米线或有机凝胶。我们还发现,当温度升高时,异丙醇中的有机凝胶会转变为结晶薄片或纳米线。极性溶剂中的可逆自组装可能主要受FF分子自身之间的电子和芳香相互作用控制,这与解离平衡有关,并且受温度的影响很大。我们发现,异丙醇溶剂中的有机凝胶向晶体结构发生了独特的转变,该过程受温度驱动并且可以动力学控制。在加热-冷却过程中,FF优先自组装为亚稳态纳米纤维和有机凝胶。在引入外部能量(例如本研究中使用的升高温度)后,它们通过分子重排进一步转变为热力学稳定的晶体结构。这项研究中展示的策略为可控地制造智能的,温度响应性的肽纳米材料提供了一种有效的方法,并丰富了对二苯丙氨酸肽纳米结构生长机理的理解。

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