Department of Physics, Government College University Faisalabad (GCUF), Allama Iqbal Road, Faisalabad, 38000, Pakistan.
College of Physics and Information Technology, Shaanxi Normal University, 710119, Xian, Shaanxi, People's Republic of China.
Sci Rep. 2024 Aug 20;14(1):19304. doi: 10.1038/s41598-024-68631-0.
First time compared the different metals doped ZnS nanoparticles for antibacterial and liver cancer cell line. In this study, copper, aluminum and nickel doped ZnS NPs were synthesized via co-precipitation method. The XRD analysis was confirmed the presence of cubic crystal structure and crystallite size decreased from 6 to 3 nm with doping elements. While as SEM micro-grains were revealed slightly irregular and agglomerated morphology with the presence of dopant elements. The presence of different dopant elements such as Cu, Al and Ni in ZnS NPs was identified via EDX analysis. The FTIR results demonstrate various vibrational stretching and bending modes attached to the surface of ZnS nanomaterials. After that the well diffusion method was used to conduct in-vitro bioassays for evaluation of antibacterial and anticancer activities against E.coli and B.cereus, as well as HepG2 liver cancer cell line. Our findings unveil exceptional results with maximum inhibition zone of approximately 9 to 23 mm observed against E.coli and 12 to 27 mm against B.cereus, respectively. In addition, the significant reduction in cell viability was achieved against the HepG2 liver cancer cell line. These favorable results highlight the potential of Ni doped ZnS NPs for various biomedical applications. In future, the doped ZnS nanomaterials will be suitable for hyperthermia therapy and wound healing process.
首次比较了不同金属掺杂的 ZnS 纳米粒子的抗菌和肝癌细胞系活性。在这项研究中,通过共沉淀法合成了铜、铝和镍掺杂的 ZnS NPs。XRD 分析证实了立方晶体结构的存在,并且随着掺杂元素的存在,晶粒尺寸从 6nm 减小到 3nm。而 SEM 微观晶粒则呈现出略微不规则和团聚的形态,同时存在掺杂元素。通过 EDX 分析确认了 ZnS NPs 中存在不同的掺杂元素,如 Cu、Al 和 Ni。FTIR 结果表明,各种振动伸缩和弯曲模式附着在 ZnS 纳米材料的表面。然后,采用完全扩散法进行体外生物测定,以评估对 E.coli 和 B.cereus 以及 HepG2 肝癌细胞系的抗菌和抗癌活性。我们的研究结果显示了出色的结果,对 E.coli 的最大抑菌圈约为 9 至 23mm,对 B.cereus 的最大抑菌圈约为 12 至 27mm。此外,对 HepG2 肝癌细胞系的细胞活力有显著的降低。这些有利的结果突出了 Ni 掺杂的 ZnS NPs 在各种生物医学应用中的潜力。在未来,掺杂的 ZnS 纳米材料将适用于热疗和伤口愈合过程。