溶菌酶
抗菌活性
化学
阳离子聚合
谷胱甘肽
膜
合理设计
生物物理学
二硫键
大肠杆菌
化学工程
疏水效应
金黄色葡萄球菌
抗菌剂
生物相容性材料
生物传感器
组合化学
制作
自组装
纳米技术
表面改性
静电
表面电荷
硫醇
酶
原子力显微镜
控制释放
共价键
药物输送
胞壁酶
作者
Can Wu,Qiuyue Hou,Hongyu Liang,Xuefeng Zhang,Bing Cui,Yuying Hu,Xin Shi,Bin Zhou
标识
DOI:10.1016/j.crfs.2026.101393
摘要
This study developed a self-assembled lysozyme nanofilm at the air-water interface using reduced glutathione (GSH) as an inducer, demonstrating broad-spectrum antibacterial activity and tunable functionality. Through thiol-disulfide exchange, GSH reduces the disulfide bonds in lysozyme, leading to protein unfolding and conformational transition from α-helix to β-sheet-rich structures. The assembly process, along with film morphology and surface properties, can be effectively modulated by varying lysozyme concentration and environmental pH, enabling the rational design of surface charge and hydrophobicity to optimize antibacterial performance. The resulting nanofilm demonstrates significant antibacterial efficacy against both Staphylococcus aureus (Gram-positive bacteria) and Escherichia coli (Gram-negative bacteria), attributed to a synergistic mechanism involving inherent enzymatic activity and membrane disruption mediated by exposed hydrophobic domains and positive surface charges. These findings provide a feasible strategy for designing eco-friendly protein-based antibacterial materials with potential applications in food packaging, biomedical coatings, and functional surfaces.
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