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载银/铜纳米粒子的自组装类肽硫脲基有机-无机杂化水凝胶的抗菌和超疏水性能及其在防污表面的应用。

Silver and Copper Nanoparticle-Loaded Self-Assembled Pseudo-Peptide Thiourea-Based Organic-Inorganic Hybrid Gel with Antibacterial and Superhydrophobic Properties for Antifouling Surfaces.

机构信息

Department of Chemistry, Indian Institute of Technology Ropar, Rupnagar, Punjab 140001, India.

Department of Biomedical Engineering, Indian Institute of Technology Ropar, Rupnagar, Punjab 140001, India.

出版信息

ACS Appl Bio Mater. 2024 Jun 17;7(6):4162-4174. doi: 10.1021/acsabm.4c00476. Epub 2024 May 20.

Abstract

The escalating threat of antimicrobial resistance has become a global health crisis. Therefore, there is a rising momentum in developing biomaterials with self-sanitizing capabilities and inherent antibacterial properties. Despite their promising antimicrobial properties, metal nanoparticles (MNPs) have several disadvantages, including increased toxicity as the particle size decreases, leading to oxidative stress and DNA damage that need consideration. One solution is surface functionalization with biocompatible organic ligands, which can improve nanoparticle dispersibility, reduce aggregation, and enable targeted delivery to microbial cells. The existing research predominantly concentrates on the advancement of peptide-based hydrogels for coating materials to prevent bacterial infection, with limited exploration of developing surface coatings using organogels. Herein, we have synthesized organogel-based coatings doped with MNPs that can offer superior hydrophobicity, oleophobicity, and high stability that are not easily achievable with hydrogels. The self-assembled gels displayed distinct morphologies, as revealed by scanning electron microscopy and atomic force microscopy. The cross-linked matrix helps in the controlled and sustained release of MNPs at the site of bacterial infection. The synthesized self-assembled gel@MNPs exhibited excellent antibacterial properties against harmful bacteria such as and and reduced bacterial viability up to 95% within 4 h. Cytotoxicity testing against metazoan cells demonstrated that the gels doped with MNPs were nontoxic (IC > 100 μM) to mammalian cells. Furthermore, in this study, we coated the organogel@MNPs on cotton fabric and tested it against Gram +ve and Gram -ve bacteria. Additionally, the developed cotton fabric exhibited superhydrophobic properties and developed a barrier that limits the interaction between bacteria and the surface, making it difficult for bacteria to adhere and colonize, which holds potential as a valuable resource for self-cleaning coatings.

摘要

抗菌药物耐药性的不断升级已经成为全球健康危机。因此,开发具有自消毒能力和固有抗菌性能的生物材料的势头日益高涨。尽管金属纳米粒子(MNPs)具有有前景的抗菌性能,但它们也存在几个缺点,例如随着粒径减小毒性增加,导致氧化应激和 DNA 损伤,这需要考虑。一种解决方案是用生物相容性有机配体对其进行表面功能化,这可以改善纳米颗粒的分散性、减少聚集并实现对微生物细胞的靶向递送。现有的研究主要集中在开发用于涂层材料以防止细菌感染的基于肽的水凝胶的进展上,而利用有机凝胶开发表面涂层的研究则有限。在这里,我们合成了掺杂 MNPs 的基于有机凝胶的涂层,它可以提供卓越的疏水性、疏油性和高稳定性,这是水凝胶不易实现的。扫描电子显微镜和原子力显微镜显示,自组装凝胶呈现出不同的形态。交联基质有助于在细菌感染部位控制和持续释放 MNPs。合成的自组装凝胶@MNPs 对有害细菌(如 和 )表现出优异的抗菌性能,并在 4 小时内将细菌活力降低到 95%以下。对后生动物细胞的细胞毒性测试表明,掺杂 MNPs 的凝胶对哺乳动物细胞没有毒性(IC > 100 μM)。此外,在这项研究中,我们将有机凝胶@MNPs 涂覆在棉织物上,并对革兰氏阳性菌和革兰氏阴性菌进行了测试。此外,所开发的棉织物表现出超疏水性,并形成了一个屏障,限制了细菌与表面的相互作用,使细菌难以附着和定植,这为自清洁涂层提供了有价值的资源。

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