Meer Bisma, Andleeb Anisa, Iqbal Junaid, Ashraf Hajra, Meer Kushif, Ali Joham Sarfraz, Drouet Samantha, Anjum Sumaira, Mehmood Azra, Khan Taimoor, Ali Mohammad, Hano Christophe, Abbasi Bilal Haider
Department of Biotechnology, Quaid-i-Azam University, Islamabad 45320, Pakistan.
Institute of Chemistry, University of the Punjab, Lahore 54590, Pakistan.
Biomolecules. 2022 Jun 20;12(6):855. doi: 10.3390/biom12060855.
Nanotechnology is an emerging area of research that deals with the production, manipulation, and application of nanoscale materials. Bio-assisted synthesis is of particular interest nowadays, to overcome the limitations associated with the physical and chemical means. The aim of this study was to synthesize ZnO nanoparticles (NPs) for the first time, utilizing the seed extract of The synthesized NPs were confirmed through various spectroscopy and imagining techniques, such as XRD, FTIR, HPLC, and SEM. The characterized NPs were then examined for various in vitro biological assays. Crystalline, hexagonal-structured NPs with an average particle size of 25.6 nm were obtained. Biosynthesized ZnO NPs exhibited potent antioxidant activities, effective α-amylase inhibition, moderate urease inhibition (56%), high lipase-inhibition (71%) activities, moderate cytotoxic potential, and significant antibacterial activity. Gene expression of caspase in HepG2 cells was enhanced along with elevated production of ROS/RNS, while membrane integrity was disturbed upon the exposure of NPs. Overall results indicated that bio-assisted ZnO NPs exhibit excellent biological potential and could be exploited for future biomedical applications. particularly in antimicrobial and cancer therapeutics. Moreover, this is the first comprehensive study on -mediated synthesis of ZnO nanoparticles and evaluation of their biological activities.
纳米技术是一个新兴的研究领域,涉及纳米级材料的生产、操控和应用。如今,生物辅助合成备受关注,以克服与物理和化学方法相关的局限性。本研究的目的是首次利用 的种子提取物合成氧化锌纳米颗粒(NPs)。通过各种光谱和成像技术,如XRD、FTIR、HPLC和SEM,对合成的NPs进行了确认。然后对表征后的NPs进行了各种体外生物学测定。获得了平均粒径为25.6 nm的结晶性六方结构NPs。生物合成的氧化锌NPs表现出强大的抗氧化活性、有效的α-淀粉酶抑制作用、中等程度的脲酶抑制作用(56%)、高的脂肪酶抑制作用(71%)、中等的细胞毒性潜力和显著的抗菌活性。HepG2细胞中半胱天冬酶的基因表达随着ROS/RNS产量的升高而增强,而NPs暴露后膜完整性受到干扰。总体结果表明,生物辅助的氧化锌NPs具有优异的生物学潜力,可用于未来的生物医学应用,特别是在抗菌和癌症治疗方面。此外,这是关于 介导合成氧化锌纳米颗粒及其生物活性评估的首次全面研究。