棉花的工程抗病毒特性:药剂、方法和未来方向

Ahmed Sharif , Mohammad Mazedul Islam
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引用次数: 0

摘要

棉花是纺织品中常用的天然纤维,具有透气性、吸水性和生物相容性等优点。然而,原棉容易受到微生物的影响。因此有可能成为病原体传播的媒介,特别是在医院环境中。最近的努力是通过加入各种药剂,如金属纳米颗粒、季铵化合物和天然提取物,使用合适的表面改性方法,赋予棉花抗病毒特性。本文综述了棉花抗病毒整理剂的特性、最新趋势和正在进行的研究活动。这些药物通过几种机制起作用:阻止病毒附着、破坏病毒包膜、停止复制和产生活性氧。关于通过纳米颗粒沉积、聚合物和硅烷功能化、点击化学和生物工程肽等方法制备耐洗涤和安全抗病毒饰面的策略的深刻讨论为未来的研究人员铺平了道路。先进的表征和标准评价描述了这些纺织材料的有效性、耐久性和生物相容性。抗病毒棉广泛应用于医疗保健、个人防护装备、公共空间和高级功能性纺织品等领域,将紫外线处理技术的范围从防御特定病毒和病原体扩展到一般抗病毒防护,为可持续、高性能的感染控制材料打开了大门。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering antiviral properties in cotton: Agents, methods, and future directions
Cotton is a commonly used natural fibre in textiles, and it possesses the advantages of breathability, absorbency and biocompatibility. However, raw cotton is susceptible to microbes. thus having the potential to serve as vector for pathogen transmission, particularly in hospital environment. Recent efforts have been directed to impart antiviral characteristics to cotton, by incorporating various agents—such as metallic nanoparticles, quaternary ammonium compounds, and natural extracts—using suitable surface modification approaches. This review provides a detailed overview of the properties, recent trends, and ongoing research activities revolving around the antiviral finishes on cotton. The agents operate through several mechanisms: preventing viral attachment, disrupting the viral envelope, stopping replication, and generating reactive oxygen species. The insightful discussion about the strategies to make wash resistant and safe antiviral finishes by methods as deposition of nanoparticles, polymer and silane-functionalization, click chemistry, and bioengineered peptides paves the way for upcoming researchers. Advanced characterization and standard evaluation depicts the effectiveness, durability, biocompatibility of these textile materials. Adopted for healthcare, PPE, public space, and advanced functional textiles applications, the antiviral cotton extends the scope of UV-treatment technologies from defense against specific viruses and pathogens to general antiviral protection, and opens the door to sustainable, high-performance infection control materials.
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