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用于高接触表面防护的抗菌二氧化硅纳米颗粒的简便喷雾涂层法

Facile Spray-Coating of Antimicrobial Silica Nanoparticles for High-Touch Surface Protection.

作者信息

Duarte Bernardino Carolina, Lee Mihyun, Ren Qun, Ruehle Bastian

机构信息

Federal Institute for Materials Research and Testing (BAM), Richard-Willstaetter-Strasse 11, D-12489 Berlin, Germany.

Humboldt University Berlin, Unter den Linden 6, D-10117 Berlin, Germany.

出版信息

ACS Appl Mater Interfaces. 2025 Feb 26;17(8):12507-12519. doi: 10.1021/acsami.4c18916. Epub 2025 Feb 12.

Abstract

The rising threat from infectious pathogens poses an ever-growing challenge. Metal-based nanomaterials have gained a great deal of attention as active components in antimicrobial coatings. Here, we report on the development of readily deployable, sprayable antimicrobial surface coatings for high-touch stainless steel surfaces that are ubiquitous in many healthcare facilities to combat the spread of pathogens. We synthesized mesoporous silica nanoparticles (MSNs) with different surface functional groups, namely, amine (MSN-NH), carboxy (MSN-COOH), and thiol groups (MSN-SH). These were chosen specifically due to their high affinity to copper and silver ions, which were used as antimicrobial payloads and could be incorporated into the mesoporous structure through favorable host-guest interactions, allowing us to find the most favorable combinations to achieve antimicrobial efficacy against various microbes on dry or semidry high-touch surfaces. The antimicrobial MSNs were firmly immobilized on stainless steel through a simple two-step spray-coating process. First, the stainless steel surfaces are primed with sprayable polyelectrolyte solutions acting as adhesion layers, and then, the loaded nanoparticle dispersions are spray-coated on top. The employed polyelectrolytes were selected and functionalized specifically to adhere well to stainless steel substrates while at the same time being complementary to the MSN surface groups to enhance the adhesion, wettability, homogeneity, and stability of the coatings. The antimicrobial properties of the nanoparticle suspension and the coatings were tested against three commonly found pathogenic bacteria, , , and , as well as a fungal pathogen, . Especially MSN-SH loaded with silver ions showed excellent antimicrobial efficacy against all tested pathogens under application-relevant, (semi)dry conditions. The findings obtained here facilitate our understanding of the correlation between the surface properties, payloads, and antimicrobial activity and show a new pathway toward simple and easily deployable solutions to combat the spread of pathogens with the help of sprayable antimicrobial surface coatings.

摘要

传染性病原体构成的威胁不断上升,带来了日益严峻的挑战。金属基纳米材料作为抗菌涂层的活性成分受到了广泛关注。在此,我们报告了一种易于部署、可喷涂的抗菌表面涂层的研发情况,该涂层用于许多医疗机构中普遍存在的高接触不锈钢表面,以对抗病原体的传播。我们合成了具有不同表面官能团的介孔二氧化硅纳米颗粒(MSN),即胺基(MSN-NH)、羧基(MSN-COOH)和巯基(MSN-SH)。选择这些官能团是因为它们对铜离子和银离子具有高亲和力,铜离子和银离子被用作抗菌有效载荷,并可通过良好的主客体相互作用纳入介孔结构,使我们能够找到最有利的组合,以实现对干燥或半干燥高接触表面上各种微生物的抗菌效果。抗菌MSN通过简单的两步喷涂工艺牢固地固定在不锈钢上。首先,用可喷涂的聚电解质溶液作为粘附层对不锈钢表面进行预处理,然后将负载纳米颗粒的分散液喷涂在上面。所使用的聚电解质经过专门选择和功能化,以使其能很好地粘附在不锈钢基材上,同时与MSN表面基团互补,以增强涂层的粘附性、润湿性、均匀性和稳定性。对纳米颗粒悬浮液和涂层的抗菌性能针对三种常见病原菌,即 、 、 和一种真菌病原菌 进行了测试。特别是负载银离子的MSN-SH在与实际应用相关的(半)干燥条件下对所有测试病原体均显示出优异的抗菌效果。此处获得的研究结果有助于我们理解表面性质、有效载荷和抗菌活性之间的相关性,并展示了一条借助可喷涂抗菌表面涂层来对抗病原体传播的简单且易于部署的解决方案的新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7938/11873980/049bfdf43fc6/am4c18916_0001.jpg

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