铜和锌纳米颗粒增强的3D打印材料的杀菌、杀毒和生物相容性

IF 6.4 4区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Andrei-Florin Sandu, Lauren Acton, Phillip Gould
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引用次数: 0

摘要

由于人口增长、城市化和气候变化,病原体的传播加剧,带来了重大的健康挑战,并因高传播、毒力、抗微生物药物耐药性(AMR)和新变种而加剧。医院获得性感染(HAI)影响了31名住院患者中的1人,每年造成284亿美元的损失。本研究介绍了一种将铜和氧化锌纳米颗粒整合到3D打印立体光刻(SLA)材料中的新型病原体控制方法。3D浸渍材料在不同的3D平台上表现出可重复性和有效性,在2小时内对12种不同的物种具有完全的杀菌/杀真菌作用,对8种临床相关病毒具有4倍的杀病毒活性。接触2小时后,未观察到人类角化细胞有明显的细胞毒性。这种材料在经过一年的加速老化后仍能保持其抗病原体活性,这表明随着时间的推移,其稳定性和性能有所提高。该方法解决了传统清洁和表面喷涂的局限性,这些局限性往往在功效和寿命方面不足;首次将商业上可用的纳米颗粒结合到3D打印材料中,为公共和临床环境中的高接触表面提供了一种多功能持久的抗致病性和生物相容性解决方案,减少了清洁表面的需要,同时限制了感染率、抗菌素耐药性的威胁和其他未来的传染病爆发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bactericidal, Virucidal, and Biocompatible Properties of 3D Printed Materials Enhanced with Copper and Zinc Nanoparticles

Bactericidal, Virucidal, and Biocompatible Properties of 3D Printed Materials Enhanced with Copper and Zinc Nanoparticles

The heightened spread of pathogens due to population growth, urbanization, and climate change presents significant health challenges, exacerbated by high transmission, virulence, antimicrobial resistance (AMR), and novel variants. Hospital-acquired infections (HAI) affect 1 in 31 hospitalized patients, costing $28.4 billion annually. This study introduces a novel approach to pathogen control by integrating copper and zinc oxide nanoparticles into 3D printed Stereolithography (SLA) materials. The 3D impregnated material demonstrates reproducibility and efficacy across different 3D platforms, showcasing complete bactericidal/fungicidal effects against twelve diverse species and a 4 log virucidal activity on eight clinically relevant viral species within 2 h. No significant cytotoxicity is observed in primary human keratinocytes after 2 h of contact. The material maintains its antipathogenic activity after a year of accelerated ageing, suggesting enhances stability and performance over time. This method addresses the limitations of conventional cleaning and surface spraying, which often fall short in efficacy and longevity; for the first time, the incorporation of commercially available nanoparticles into 3D printable materials offers a versatile long-lasting antipathogenic and biocompatible solution for high-contact surfaces in public and clinical settings, reducing the need for cleaning surfaces while limiting infection rates, the threat of AMR, and other future infectious outbreaks.

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来源期刊
Global Challenges
Global Challenges MULTIDISCIPLINARY SCIENCES-
CiteScore
8.70
自引率
0.00%
发文量
79
审稿时长
16 weeks
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