Department of Pharmacognosy, College of Pharmacy, King Saud University, Riyadh, Saudi Arabia.
Department of Chemistry, College of Science, King Saud University, Riyadh, Saudi Arabia.
PeerJ. 2023 Mar 20;11:e15004. doi: 10.7717/peerj.15004. eCollection 2023.
Biosynthesized nanoparticles are gaining popularity due to their distinctive biological applications as well as bioactive secondary metabolites from natural products that contribute in green synthesis.
This study reports a facile, ecofriendly, reliable, and cost-effective synthesis of silver nanoparticles (AgNPs), copper oxide nanoparticles (CuONPs), and polymeric PVP-silver-copper oxide nanocomposite using ethanol extract of seaweed and were evaluated for antiprotozoal, anticancer and photocatalytic potential. The nanostructures of the AgNPs, CuONPs, and polymeric PVP-Ag-CuO nanocomposite were confirmed by different spectroscopic and microscopic procedures.
The UV-vis spectrum displayed distinct absorption peaks at 440, 350, and 470 nm for AgNPs, CuONPs, and polymeric Ag-CuO nanocomposite, respectively. The average particles size of the formed AgNPs, CuONPs, and Ag-CuO nanocomposite was 25, 28, and 30 nm, respectively with zeta potential values -31.7 ± 0.6 mV, -17.6 ± 4.2 mV, and -22.9 ± 4.45 mV. The microscopic investigation of biosynthesized nanomaterials revealed a spherical morphological shape with average crystallite sizes of 17.56 nm (AgNPs), 18.21 nm (CuONPs), and 25.46 nm (PVP-Ag-CuO nanocomposite). The antiprotozoal potential of green synthesized nanomaterials was examined against and parasites. The polymeric PVP-Ag-CuO nanocomposite exerted the highest antiprotozoal effect with IC values of 17.32 ± 1.5 and 17.48 ± 4.2 µM, in contrast to AgNPs and CuONPs. The anticancer potential of AgNPs, CuONPs, and polymeric PVP-Ag-CuO nanocomposite against HepG2 cancer cell lines revealed that all the nanomaterials were effective and the highest anticancer potential was displayed by PVP-Ag-CuO nanocomposite with IC values 91.34 µg mL at 200 µg mL concentration. Additionally, PVP-Ag-CuO nanocomposite showed strong photocatalytic effect.
Overall, this study suggested that the biogenic synthesized nanomaterials AgNPs, CuONPs, and polymeric PVP-Ag-CuO nanocomposite using ethanol extract of seaweed possesses promising antiprotozoal anticancer and photocatalytic effect and could be further exploited for the development of antiprotozoal and anticancer therapeutics agents.
由于生物合成纳米粒子具有独特的生物学应用以及天然产物中的生物活性次生代谢产物,因此在绿色合成中越来越受欢迎。
本研究报告了一种简便、环保、可靠且经济高效的银纳米粒子(AgNPs)、氧化铜纳米粒子(CuONPs)和聚合物 PVP-银-氧化铜纳米复合材料的合成方法,使用海藻的乙醇提取物,并评估了它们在抗原生动物、抗癌和光催化方面的潜力。AgNPs、CuONPs 和聚合物 PVP-Ag-CuO 纳米复合材料的纳米结构通过不同的光谱和显微镜程序得到证实。
紫外-可见光谱显示,AgNPs、CuONPs 和聚合物 PVP-Ag-CuO 纳米复合材料的形成分别在 440、350 和 470nm 处具有明显的吸收峰。形成的 AgNPs、CuONPs 和 Ag-CuO 纳米复合材料的平均粒径分别为 25、28 和 30nm,相应的zeta 电位值分别为-31.7±0.6mV、-17.6±4.2mV 和-22.9±4.45mV。生物合成纳米材料的微观研究表明,其具有球形形态,平均结晶尺寸分别为 17.56nm(AgNPs)、18.21nm(CuONPs)和 25.46nm(PVP-Ag-CuO 纳米复合材料)。绿色合成纳米材料的抗原生动物活性被检测到针对 和 寄生虫。聚合物 PVP-Ag-CuO 纳米复合材料表现出最高的抗原生动物活性,IC 值分别为 17.32±1.5 和 17.48±4.2µM,与 AgNPs 和 CuONPs 相比。AgNPs、CuONPs 和聚合物 PVP-Ag-CuO 纳米复合材料对 HepG2 癌细胞系的抗癌活性表明,所有纳米材料均有效,而 PVP-Ag-CuO 纳米复合材料的抗癌活性最高,在 200µgmL 浓度下的 IC 值为 91.34µgmL。此外,PVP-Ag-CuO 纳米复合材料表现出很强的光催化效果。
总的来说,本研究表明,使用海藻乙醇提取物生物合成的纳米材料 AgNPs、CuONPs 和聚合物 PVP-Ag-CuO 纳米复合材料具有有前途的抗原生动物、抗癌和光催化作用,可以进一步开发用于抗原生动物和抗癌治疗剂。