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定制肽自组装及在云母和高定向热解石墨表面形成二维纳米带

Tailoring Peptide Self-Assembly and Formation of 2D Nanoribbons on Mica and HOPG Surface.

作者信息

Kong Hao, Liu Bin, Yang Guozheng, Chen Yun, Wei Gang

机构信息

College of Chemistry and Chemical Engineering, Qingdao University, Qingdao 266071, China.

出版信息

Materials (Basel). 2022 Jan 2;15(1):310. doi: 10.3390/ma15010310.

Abstract

Studying the interactions between biomolecules and material interfaces play a crucial role in the designing and synthesizing of functional bionanomaterials with tailored structure and function. Previously, a lot of studies were performed on the self-assembly of peptides in solution through internal and external stimulations, which mediated the creation of peptide nanostructures from zero-dimension to three-dimension. In this study, we demonstrate the self-assembly behavior of the GNNQQNY peptide on the surface of mica and highly oriented pyrolytic graphite through tailoring the self-assembly conditions. Various factors, such as the type of dissolvent, peptide concentration, pH value, and evaporation period on the formation of peptide nanofibers and nanoribbons with single- and bi-directional arrays are investigated. It is found that the creation of peptide nanoribbons on both mica and HOPG can be achieved effectively through adjusting and optimizing the experimental parameters. Based on the obtained results, the self-assembly and formation mechanisms of peptide nanoribbons on both material interfaces are discussed. It is expected that the findings obtained in this study will inspire the design of motif-specific peptides with high binding affinity towards materials and mediate the green synthesis of peptide-based bionanomaterials with unique function and application potential.

摘要

研究生物分子与材料界面之间的相互作用在设计和合成具有定制结构和功能的功能性生物纳米材料中起着至关重要的作用。此前,通过内部和外部刺激对溶液中肽的自组装进行了大量研究,这些刺激介导了从零维到三维肽纳米结构的形成。在本研究中,我们通过调整自组装条件,展示了GNNQQNY肽在云母和高度取向热解石墨表面的自组装行为。研究了各种因素,如溶剂类型、肽浓度、pH值以及蒸发时间对形成具有单向和双向阵列的肽纳米纤维和纳米带的影响。结果发现,通过调整和优化实验参数,可以有效地在云母和高度取向热解石墨上形成肽纳米带。基于所得结果,讨论了肽纳米带在两种材料界面上的自组装和形成机制。预计本研究获得的结果将激发对材料具有高结合亲和力的基序特异性肽的设计,并介导具有独特功能和应用潜力的肽基生物纳米材料的绿色合成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c887/8745981/6f53389265ea/materials-15-00310-sch001.jpg

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