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Innovative Self-Cleaning and Biocompatible Polyester Textiles Nano-Decorated with Fe–N-Doped Titanium Dioxide

机译:Fe-N掺杂二氧化钛纳米装饰的创新型自清洁和生物相容性聚酯纺织品

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摘要

The development of innovative technologies to modify natural textiles holds an important impact for medical applications, including the prevention of contamination with microorganisms, particularly in the hospital environment. In our study, Fe and N co-doped TiO2 nanoparticles have been obtained via the hydrothermal route, at moderate temperature, followed by short thermal annealing at 400 °C. These particles were used to impregnate polyester (PES) materials which have been evaluated for their morphology, photocatalytic performance, antimicrobial activity against bacterial reference strains, and in vitro biocompatibility on human skin fibroblasts. Microscopic examination and quantitative assays have been used to evaluate the cellular morphology and viability, cell membrane integrity, and inflammatory response. All treated PES materials specifically inhibited the growth of Gram-negative bacilli strains after 15 min of contact, being particularly active against Pseudomonas aeruginosa. PES fabrics treated with photocatalysts did not affect cell membrane integrity nor induce inflammatory processes, proving good biocompatibility. These results demonstrate that the treatment of PES materials with TiO2-1% Fe–N particles could provide novel biocompatible fabrics with short term protection against microbial colonization, demonstrating their potential for the development of innovative textiles that could be used in biomedical applications for preventing patients’ accidental contamination with microorganisms from the hospital environment.
机译:修改天然纺织品的创新技术的开发对医学应用具有重要影响,包括防止微生物污染,尤其是在医院环境中。在我们的研究中,Fe和N共掺杂的TiO2纳米颗粒通过水热途径在中等温度下进行,然后在400°C下进行短时间热退火。这些颗粒用于浸渍聚酯(PES)材料,这些材料已对其形态,光催化性能,对细菌参考菌株的抗菌活性以及对人皮肤成纤维细胞的体外生物相容性进行了评估。显微镜检查和定量测定已用于评估细胞形态和生存力,细胞膜完整性和炎症反应。所有处理过的PES材料在接触15分钟后均能特异性抑制革兰氏阴性杆菌的生长,对铜绿假单胞菌特别有效。用光催化剂处理过的PES织物不影响细胞膜的完整性,也不引起炎症过程,证明了良好的生物相容性。这些结果表明,用TiO2-1%Fe–N颗粒处理PES材料可以提供新型的生物相容性织物,并对微生物定植提供短期保护,这表明它们具有开发可用于生物医学应用以预防患者的创新纺织品的潜力。医院环境中的微生物意外污染。

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