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In-Vitro cytotoxicity, antibacterial, and UV protection properties of the biosynthesized Zinc oxide nanoparticles for medical textile applications

机译:用于医用纺织品应用的生物合成氧化锌纳米粒子的体外细胞毒性,抗菌和UV保护性能

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Nowadays, medical textiles have become the most essential and developing part in human healthcare sector. This work was undertaken with a view to harness the bio-active macromolecules secreted by fungi e.g. proteins and enzymes in bio-synthesis of ZnO nanoparticles for multifunctional textiles such as antibacterial activity and UV protection with considering the cytotoxicity limitation. Herein, the isolated fungus, Aspergillus terreus, was allowed to produce proteins which has affinity to cape ZnO-NPs. Various factors affecting the behavior of the secreted proteins on the formed nanoparticles were investigated. Thorough characterizations of the protein capped ZnO-NPs were performed by the using of UV-Visible spectroscopy, transmission electron microscope (TEM) Fourier Transform-Infra Red (FT-IR) spectroscopy, X-ray diffraction (XRD) analysis and Dynamic light scattering analysis (DLS). Prior treatment of cotton fabrics with ZnO-NPs, the cytotoxicity of the protein capped ZnO-NPs was examined. After that, the antibacterial activity of the ZnO-NPs before and after treating of cotton fabrics, besides, the UV-protection (UPF) properties were investigated. Results obviously demonstrated the ability of the bio-secreted protein to cape and reduce ZnO to spherical ZnO-NPs with particle size lied around 10-45 nm, as indicated form UV-vis., spectra TEM, Zeta sizer, FTIR and XRD. Regarding to the results of cytotoxicity, the treatment of the cotton fabrics with ZnO-NPs were performed at safe dose (20 ppm). At this dose, ZnO-NPs loaded samples exhibited reasonable antibacterial activity against both Gram positive and Gram negative bacteria; besides, good UV-protection with reasonable increase in UVA and UVB blocking values. Indeed, nanotechnology based microbiological active molecules opens up new opportunities for us to explore novel applications in terms of green technology.
机译:如今,医疗纺织品已成为人类医疗部门最重要和发展的部分。这项工作是为了利用真菌分泌的生物活性大分子的观点而进行。考虑细胞毒性限制,ZnO纳米粒子生物合成的ZnO纳米粒子的生物合成酶和酶的蛋白质和酶。在此,允许分离的真菌曲霉(Aspergillus Terreus)被允许产生对辣椒 - NPS具有亲和力的蛋白质。研究了影响分泌蛋白在形成的纳米颗粒上的分泌蛋白行为的各种因素。通过使用UV可见光光谱,透射电子显微镜(TEM)傅里叶变换 - 红外线(FT-IR)光谱,X射线衍射(XRD)分析和动态光散射进行彻底表征蛋白质封端的ZnO-NPS进行彻底表征蛋白质封端的ZnO-NPS分析(DLS)。先前用ZnO-NPS治疗棉织物,检查蛋白质封端的ZnO-NPS的细胞毒性。此后,研究了ZnO-NP之前和治疗棉织物之前和之后的抗菌活性,除了UV保护(UPF)性质。结果明显证明了生物分泌的蛋白质对己岛的能力,并将ZnO减少到具有粒度的球形ZnO-nps,粒径约为10-45nm,如图3-45 nm一样,如UV-Vis形式。,光谱TEM,Zeta Sizer,FTIR和XRD。关于细胞毒性的结果,以安全剂量(20ppm)进行ZnO-NPS的棉织物的处理。在此剂量,ZnO-NPS加载的样品对革兰氏阳性和革兰氏阴性细菌表现出合理的抗菌活性;此外,良好的紫外线保护,具有合理增加的UVA和UVB阻挡值。实际上,基于纳米技术的微生物活性分子为我们开辟了新的机会,以便在绿色技术方面探索新的应用。

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