National Institute of Materials Physics, Str. Atomistilor 405A, POB MG 7, 077125, Magurele, Ilfov, Romania.
Biophysics and Cellular Biotechnology Department, Excellence Centre for Research in Biophysics and Cellular Biotechnology, Carol Davila University of Medicine and Pharmacy, 8 Eroii Sanitari Blvd., 050474, Bucharest, Romania.
Sci Rep. 2022 Apr 27;12(1):6887. doi: 10.1038/s41598-022-11003-3.
The present study aimed to assess the feasibility of developing low-cost multipurpose iron oxide/TiO nanocomposites (NCs) for use in combined antitumor therapies and water treatment applications. Larger size (≈ 100 nm) iron oxide nanoparticles (IONPs) formed magnetic core-TiO shell structures at high Fe/Ti ratios and solid dispersions of IONPs embedded in TiO matrices when the Fe/Ti ratio was low. When the size of the iron phase was comparable to the size of the crystallized TiO nanoparticles (≈ 10 nm), the obtained nanocomposites consisted of randomly mixed aggregates of TiO and IONPs. The best inductive heating and ROS photogeneration properties were shown by the NCs synthesized at 400 °C which contained the minimum amount of α-FeO and sufficiently crystallized anatase TiO. Their cytocompatibility was assessed on cultured human and murine fibroblast cells and analyzed in relation to the adsorption of bovine serum albumin from the culture medium onto their surface. The tested nanocomposites showed excellent cytocompatibility to human fibroblast cells. The results also indicated that the environment (i.e. phosphate buffer or culture medium) used to disperse the nanomaterials prior to performing the viability tests can have a significant impact on their cytotoxicity.
本研究旨在评估开发低成本多功能氧化铁/二氧化钛纳米复合材料(NCs)用于联合抗肿瘤治疗和水处理应用的可行性。在高 Fe/Ti 比下,较大尺寸(≈100nm)的氧化铁纳米颗粒(IONPs)形成了具有磁性核-TiO 壳结构的纳米复合材料,而当 Fe/Ti 比较低时,IONPs 则以固态分散体的形式嵌入 TiO 基质中。当铁相的尺寸与结晶的 TiO 纳米颗粒(≈10nm)相当时,所得到的纳米复合材料由 TiO 和 IONPs 的随机混合聚集体组成。在 400°C 下合成的 NCs 显示出最佳的感应加热和 ROS 光生成性能,其含有最少量的α-FeO 和足够结晶的锐钛矿 TiO。在培养的人源和鼠源成纤维细胞上评估了它们的细胞相容性,并分析了它们与从培养基中吸附到其表面的牛血清白蛋白之间的关系。所测试的纳米复合材料对人成纤维细胞表现出优异的细胞相容性。结果还表明,在进行细胞活力测试之前,用于分散纳米材料的环境(即磷酸盐缓冲液或培养基)可能会对其细胞毒性产生重大影响。