Design and Characterization of Antibacterial Peptide Nanofibrils as Components of Composites for Biomaterial Applications.

IF 2 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Current protein & peptide science Pub Date : 2025-02-19 DOI:10.2174/0113892037353453241219185311
Justyna Sawicka, Piotr Bollin, Anna Sylla, Mirosława Panasiuk, Michalina Wilkowska, Lidia Ciołek, Mateusz Leśniewski, Aleksandra Konopka, Karol Struniawski, Gabriela Całka-Kuc, Adam Liwo, Piotr Hańczyc, Maciej Kozak, Beata Gromadzka, Monika Biernat, Sylwia Rodziewicz-Motowidło
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Abstract

Purpose: The purpose of this study was to design and synthesize the ug46 peptide, incorporate its fibrils into composite materials, and evaluate its structural and antimicrobial properties. Another objective was to utilize spectroscopy and molecular simulation, enhanced by Machine Vision methods, to monitor the aggregation process of the ug46 peptide and assess its potential as a scaffold for an antimicrobial peptide.

Method: The structural analysis of the ug46 peptide reveals its dynamic conformational changes. Initially, the peptide exhibits a disordered structure with minimal α-helix content, but as incubation progresses, it aggregates into fibrils rich in β-sheets. This transformation was validated by CD and ThT assays, which showed decreased molar ellipticity and an increase in ThT fluorescence.

Results: Laser-induced fluorescence and molecular dynamics simulations further revealed the transition from a compact native state to extended "worm-like" filament structures, influenced by peptide concentration and temperature. TEM and AFM confirmed these changes, showing the evolution of protofibrils into mature fibrils with characteristic twists. When incorporated into chitosan- bioglass composites, these fibrils significantly enhanced antimicrobial activity against pathogens such as Staphylococcus aureus and Pseudomonas aeruginosa.

Conclusion: Overall, ug46 peptide fibrils show promise as a multifunctional scaffold with structural and antimicrobial benefits in composite biomaterials.

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抗菌肽纳米原纤维用于生物材料复合材料的设计与表征。
目的:设计合成ug46肽,将其原纤维掺入复合材料中,并对其结构和抗菌性能进行评价。另一个目标是利用光谱和分子模拟,通过机器视觉方法增强,监测ug46肽的聚集过程,并评估其作为抗菌肽支架的潜力。方法:对ug46肽进行结构分析,揭示其动态构象变化。最初,肽呈现出α-螺旋含量极低的无序结构,但随着培养的进行,它聚集成富含β-片的原纤维。CD和ThT实验证实了这种转化,表明摩尔椭圆率降低,ThT荧光增加。结果:激光诱导荧光和分子动力学模拟进一步揭示了从紧凑的天然状态到扩展的“蠕虫状”丝结构的转变,受肽浓度和温度的影响。TEM和AFM证实了这些变化,显示了原纤维向成熟原纤维的演变,并具有特征性的扭曲。当加入壳聚糖-生物玻璃复合材料时,这些原纤维显著增强了对金黄色葡萄球菌和铜绿假单胞菌等病原体的抗菌活性。结论:ug46肽原纤维在复合生物材料中作为一种具有结构和抗菌作用的多功能支架具有广阔的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Current protein & peptide science
Current protein & peptide science 生物-生化与分子生物学
CiteScore
5.20
自引率
0.00%
发文量
73
审稿时长
6 months
期刊介绍: Current Protein & Peptide Science publishes full-length/mini review articles on specific aspects involving proteins, peptides, and interactions between the enzymes, the binding interactions of hormones and their receptors; the properties of transcription factors and other molecules that regulate gene expression; the reactions leading to the immune response; the process of signal transduction; the structure and function of proteins involved in the cytoskeleton and molecular motors; the properties of membrane channels and transporters; and the generation and storage of metabolic energy. In addition, reviews of experimental studies of protein folding and design are given special emphasis. Manuscripts submitted to Current Protein and Peptide Science should cover a field by discussing research from the leading laboratories in a field and should pose questions for future studies. Original papers, research articles and letter articles/short communications are not considered for publication in Current Protein & Peptide Science.
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