Khan Amna Komal, Renouard Sullivan, Drouet Samantha, Blondeau Jean-Philippe, Anjum Iram, Hano Christophe, Abbasi Bilal Haider, Anjum Sumaira
Department of Biotechnology, Kinnaird College for Women, Jail Road, Lahore 54000, Pakistan.
Institut de Chimie et de Biologie des Membranes et des Nano-Objets, CNRS UMR 5248, Bordeaux University, 33600 Pessac, France.
Pharmaceutics. 2021 Nov 22;13(11):1977. doi: 10.3390/pharmaceutics13111977.
The green synthesis of nanoparticles has emerged as a simple, safe, sustainable, reliable and eco-friendly protocol. Among different types of NPs, green-synthesized zinc oxide NPs (ZnONPs) show various promising biological uses due to their interesting magnetic, electrical, optical and chemical characteristics. Keeping in view the dependence of the therapeutic efficacy of NPs on their physico-chemical characteristics, the green synthesis of ZnONPs using leaf extract under UV-A and UV-C light was carried out in this study. UV-irradiation helped to control the size and morphology of ZnONPs by exciting the electrons in the photoactive compounds of plant extracts to enhance the bio-reduction of ZnO into ZnONPs. leaf extract was found enriched with phenolic (2.47 ± 0.12 mg GAE/g DW) and flavonoid content (0.88 ± 0.28 mg QE/g DW) contributing to its 74.33% free-radical scavenging activity. FTIR spectra showed the involvement of polyphenols in the bio-reduction, stabilization and capping of ZnONPs. Moreover, SEM-EDX and XRD analyses showed great potential of UV-C light in yielding smaller (34-39 nm) oval-shaped ZnONPs, whereas UV-A irradiation resulted in the formation of fairly spherical 67-71 nm ZnONPs and control ZnONPs were of mixed shape and even larger size (84-89 nm). Green-synthesized ZnONPs, notably CE-UV-C-ZnONPs, showed promising anti-bacterial activities against and . Moreover, ZnONPs also enhanced ROS production which led to a significant loss of mitochondrial membrane potential and activated caspase-3 gene expression and caspase-3/7 activity in human hepatocellular carcinoma (HepG2) cells. CE-UV-C-ZnONP treatment reduced HepG2 cell viability to as low as 36.97% owing to their unique shape and smaller size. Lastly, ZnONPs were found to be highly biocompatible towards brine shrimp and human red blood cells suggesting their bio-safe nature. This research study sheds light on the plausible role of UV radiation in the green synthesis of ZnONPs with reasonable control over their size and morphology, thus improving their biological efficacy.
纳米粒子的绿色合成已成为一种简单、安全、可持续、可靠且环保的方法。在不同类型的纳米粒子中,绿色合成的氧化锌纳米粒子(ZnONPs)由于其有趣的磁性、电学、光学和化学特性而展现出各种有前景的生物学用途。鉴于纳米粒子的治疗效果取决于其物理化学特性,本研究利用叶提取物在UV-A和UV-C光下进行了ZnONPs的绿色合成。紫外线照射通过激发植物提取物光活性化合物中的电子来增强ZnO向ZnONPs的生物还原,从而有助于控制ZnONPs的尺寸和形态。发现叶提取物富含酚类(2.47±0.12毫克没食子酸当量/克干重)和黄酮类含量(0.88±0.28毫克槲皮素当量/克干重),这使其自由基清除活性达到74.33%。傅里叶变换红外光谱表明多酚参与了ZnONPs的生物还原、稳定和包覆。此外,扫描电子显微镜-能谱分析(SEM-EDX)和X射线衍射(XRD)分析表明,UV-C光在生成较小(34-39纳米)椭圆形ZnONPs方面具有很大潜力,而UV-A照射则导致形成相当球形的67-71纳米ZnONPs,对照ZnONPs形状混合且尺寸更大(84-89纳米)。绿色合成的ZnONPs,尤其是CE-UV-C-ZnONPs,对[具体细菌名称1]和[具体细菌名称2]显示出有前景的抗菌活性。此外,ZnONPs还增强了活性氧的产生,这导致人肝癌(HepG2)细胞线粒体膜电位显著丧失,并激活了半胱天冬酶-3基因表达和半胱天冬酶-3/7活性。由于其独特的形状和较小的尺寸,CE-UV-C-ZnONP处理使HepG2细胞活力降低至36.97%。最后,发现ZnONPs对卤虫和人红细胞具有高度生物相容性,表明其生物安全性。这项研究揭示了紫外线辐射在ZnONPs绿色合成中对其尺寸和形态进行合理控制的可能作用,从而提高了它们的生物学功效。