Great Ormond Street Institute of Child Health, University College London, 30 Guilford Street, London, WC1N 1EH, UK.
Department of Biology, Edge Hill University, Ormskirk, L39 4QP, UK.
Sci Rep. 2020 Oct 7;10(1):16660. doi: 10.1038/s41598-020-73539-6.
Oxidovanadium complexes with organic ligands are well known to have cytotoxic or differentiating capabilities against a range of cancer cell types. Their limited use in clinical testing though has resulted largely from uncertainties about the long-term toxicities of such complexes, due in part to the speciation to vanadate ions in the circulation. We hypothesised that more highly stable complexes, delivered using liposomes, may provide improved opportunities for oxidovanadium applications against cancer. In this study we sourced specifically hydrophobic forms of oxidovanadium complexes with the explicit aim of demonstrating liposomal encapsulation, bioavailability in cultured neuroblastoma cells, and effective cytotoxic or differentiating activity. Our data show that four ethanol-solubilised complexes with amine bisphenol, aminoalcohol bisphenol or salan ligands are equally or more effective than a previously used complex bis(maltolato)oxovanadium(V) in neuroblastoma cell lines. Moreover, we show that one of these complexes can be stably incorporated into cationic liposomes where it retains very good bioavailability, apparently low speciation and enhanced efficacy compared to ethanol delivery. This study provides the first proof-of-concept that stable, hydrophobic oxidovanadium complexes retain excellent cellular activity when delivered effectively to cancer cells with nanotechnology. This offers the improved prospect of applying oxidovanadium-based drugs in vivo with increased stability and reduced off-target toxicity.
含有机配体的氧化钒配合物已被证实对多种癌细胞类型具有细胞毒性或分化能力。然而,由于此类配合物在循环中向钒酸盐离子的形态存在不确定性,其在临床测试中的应用受到限制。我们假设,使用脂质体传递更稳定的配合物,可能会为氧化钒在癌症治疗中的应用提供更好的机会。在本研究中,我们特别寻找疏水性氧化钒配合物,旨在展示脂质体包封、在培养的神经母细胞瘤细胞中的生物利用度以及有效的细胞毒性或分化活性。我们的数据表明,四种与胺双酚、氨基醇双酚或沙兰配体的乙醇可溶性配合物与先前使用的双(麦芽酚)氧代钒(V)配合物在神经母细胞瘤细胞系中同样有效或更有效。此外,我们表明,这些配合物之一可以稳定地掺入阳离子脂质体中,其中它保持非常好的生物利用度,明显低的形态和增强的功效与乙醇递送相比。这项研究首次证明,当使用纳米技术将稳定的疏水性氧化钒配合物有效地递送到癌细胞中时,它们保留了优异的细胞活性。这为在体内应用基于氧化钒的药物提供了更好的前景,因为它们具有更高的稳定性和降低的脱靶毒性。