可持续制造双形态植物衍生 ZnO 纳米粒子及其在生物医学和环境方面的潜能探索。
Sustainable fabrication of dimorphic plant derived ZnO nanoparticles and exploration of their biomedical and environmental potentialities.
机构信息
Environmental Sciences Department, Faculty of Science, Alexandria University, Alexandria, 21511, Egypt.
Green Technology Group, Faculty of Science, Alexandria University, Alexandria, 21511, Egypt.
出版信息
Sci Rep. 2024 Jun 12;14(1):13459. doi: 10.1038/s41598-024-63459-0.
Although, different plant species were utilized for the fabrication of polymorphic, hexagonal, spherical, and nanoflower ZnO NPs with various diameters, few studies succeeded in synthesizing small diameter ZnO nanorods from plant extract at ambient temperature. This work sought to pioneer the ZnO NPs fabrication from the aqueous extract of a Mediterranean salt marsh plant species Limoniastrum monopetalum (L.) Boiss. and assess the role of temperature in the fabrication process. Various techniques have been used to evaluate the quality and physicochemical characteristics of ZnO NPs. Ultraviolet-visible spectroscopy (UV-VIS) was used as the primary test for formation confirmation. TEM analysis confirmed the formation of two different shapes of ZnO NPs, nano-rods and near hexagonal NPs at varying reaction temperatures. The nano-rods were about 25.3 and 297.9 nm in diameter and in length, respectively while hexagonal NPs were about 29.3 nm. The UV-VIS absorption spectra of the two forms of ZnO NPs produced were 370 and 365 nm for nano-rods and hexagonal NPs, respectively. FT-IR analysis showed Zn-O stretching at 642 cm and XRD confirmed the crystalline structure of the produced ZnO NPs. Thermogravimetric analysis; TGA was also used to confirm the thermal stability of ZnO NPs. The anti-tumor activities of the two prepared ZnO NPs forms were investigated by the MTT assay, which revealed an effective dose-dependent cytotoxic effect on A-431 cell lines. Both forms displayed considerable antioxidant potential, particularly the rod-shaped ZnO NPs, with an IC of 148.43 µg mL. The rod-shaped ZnO NPs were superior candidates for destroying skin cancer, with IC of 93.88 ± 1 µg mL ZnO NPs. Thus, rod-shaped ZnO NPs are promising, highly biocompatible candidate for biological and biomedical applications. Furthermore, both shapes of phyto-synthesized NPs demonstrated effective antimicrobial activity against various pathogens. The outcomes highlight the potential of phyto-synthesized ZnO NPs as an eco-friendly alternative for water and wastewater disinfection.
尽管不同的植物物种被用于制造多晶态、六方、球形和纳米花状 ZnO NPs,其粒径也各不相同,但很少有研究成功地在常温下从植物提取物中合成小直径 ZnO 纳米棒。本工作旨在开创从地中海盐沼植物 Limoniastrum monopetalum(L.)Boiss 的水提物中制备 ZnO NPs 的工作,并评估温度在制备过程中的作用。各种技术已被用于评估 ZnO NPs 的质量和物理化学特性。紫外-可见光谱(UV-VIS)被用作形成确认的主要测试。TEM 分析证实,在不同的反应温度下,形成了两种不同形状的 ZnO NPs,纳米棒和近六方 NPs。纳米棒的直径分别约为 25.3 和 297.9nm,长度分别约为 29.3nm。两种形式的 ZnO NPs 的 UV-VIS 吸收光谱分别为 370nm 和 365nm。FT-IR 分析表明 Zn-O 伸缩振动在 642cm 处,XRD 证实了所制备的 ZnO NPs 的晶体结构。热重分析;TGA 也用于确认 ZnO NPs 的热稳定性。通过 MTT 测定法研究了两种制备的 ZnO NPs 形式的抗肿瘤活性,结果表明对 A-431 细胞系具有有效剂量依赖性的细胞毒性作用。两种形式均表现出相当大的抗氧化潜力,特别是棒状 ZnO NPs,IC 为 148.43µg mL。棒状 ZnO NPs 是破坏皮肤癌的理想候选物,IC 为 93.88 ± 1µg mL ZnO NPs。因此,棒状 ZnO NPs 是一种很有前途的、高度生物相容性的生物和生物医学应用候选物。此外,两种形状的植物合成 NPs 均表现出对各种病原体的有效抗菌活性。研究结果表明,植物合成的 ZnO NPs 作为水和废水消毒的环保替代物具有潜力。
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