Department of Chemistry, E.G.S. Pillay Engineering College, Nagapattinam, Tamil Nadu, India.
Department of Chemistry, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences, Saveetha University, Chennai, Tamil Nadu, India.
J Biomol Struct Dyn. 2024 Jul;42(11):5931-5945. doi: 10.1080/07391102.2023.2230283. Epub 2023 Jul 2.
The objective of this research was to create stable nickel nanoparticles using nickel chloride salt and a Schiff base ligand called DPMN. The synthesis process involved a two-step phase transfer procedure. Spectroscopic techniques such as UV-Visible and FT-IR were used to confirm the formation of ligand-stabilized nickel nanoparticles (DPMN-NiNPs). To analyze the size, surface morphology, and quality of DPMN-NiNPs, SEM and TEM techniques were utilized. studies were performed to investigate the potential anticancer activity of the synthesized compounds against three different cancer cell lines and one normal cell line, and the results were compared to those of cis-platin. The researchers also conducted tests to determine the ability of DPMN-NiNPs to bind to CT-DNA using various techniques such as electronic absorption, fluorescence, viscometric, and cyclic voltammetric. The results showed that the synthesized DPMN-NiNPs exhibited good DNA binding ability, which was further validated by denaturation of DNA using thermal and sonochemical methods. The researchers also investigated the antimicrobial and antioxidant activities of DPMN-NiNPs, which demonstrated better biological activities than DPMN alone. Furthermore, the synthesized nano compounds were found to selectively damage cancer cell lines without harming normal cell lines. Finally, the researchers examined the potential of DPMN-NiNPs as a catalyst in dye degradation by testing its ability to decompose methyl red dye using UV-Visible spectroscopy.Communicated by Ramaswamy H. Sarma.
本研究的目的是使用氯化镍盐和一种席夫碱配体 DPMN 来制备稳定的镍纳米粒子。合成过程涉及两步相转移程序。使用光谱技术如紫外-可见和傅里叶变换红外光谱(FT-IR)来确认配体稳定的镍纳米粒子(DPMN-NiNPs)的形成。为了分析 DPMN-NiNPs 的大小、表面形态和质量,使用扫描电子显微镜(SEM)和透射电子显微镜(TEM)技术。进行了研究,以研究合成化合物对三种不同癌细胞系和一种正常细胞系的潜在抗癌活性,并将结果与顺铂进行比较。研究人员还进行了测试,以确定 DPMN-NiNPs 与 CT-DNA 结合的能力,使用各种技术,如电子吸收、荧光、粘度和循环伏安法。结果表明,合成的 DPMN-NiNPs 具有良好的 DNA 结合能力,这进一步通过使用热和超声化学方法使 DNA 变性得到了验证。研究人员还研究了 DPMN-NiNPs 的抗菌和抗氧化活性,其表现出比 DPMN 更好的生物活性。此外,合成的纳米化合物被发现对癌细胞系具有选择性的损伤作用,而不会对正常细胞系造成伤害。最后,研究人员研究了 DPMN-NiNPs 作为染料降解催化剂的潜力,通过使用紫外-可见光谱测试其分解甲基红染料的能力来进行测试。由 Ramaswamy H. Sarma 交流。