a School of Chemical Engineering, College of Engineering, IPE , University of Tehran , Tehran , Iran.
b Medical Lab Technology Department , School of Allied Medical Sciences, Shahid Beheshti University of Medical Sciences , Tehran , Iran.
Artif Cells Nanomed Biotechnol. 2018;46(sup2):96-111. doi: 10.1080/21691401.2018.1452023. Epub 2018 Mar 22.
Nanoformulations derived from fine porous ZnO quantum dot nanoparticles (QD NPs) can offer strong potential medical applications; especially in cancer therapy. ZnO QD NPs was synthesized by sol-gel hydrothermal process, fast cold quenching and further smart surface functionalization methods to obtain ultrasmall size (1-4 nm) NPs. ZnO nanopolymer, a wetting agent, PEG co-solvent and water/oil emulsion stabilizer were considered in our nanofluid formulation. The resulting nanofluid was characterized by SEM, FTIR, photoluminescence, band gap energy, zeta potential and UV-Vis spectroscopy. The cytotoxic effects on the growth of four cancer cell lines were evaluated by MTT assay. The IC (µg/ml) values of 30, 41, 40 and 35 for KB44, MCF-7, HT29 and HeLa cells, respectively, after 48 h of nanoformulation treatment suggested the cytotoxic effect of this nanoformulation on these cell lines in a concentration-dependent manner (p < .05). ZnO nanofluid destroyed cancer cell lines more efficiently than the normal HFF-2 (IC= 105 µg/ml). The reduction in cell viability in response to ZnO nanofluid treatment induced apoptosis in the cultured cells. Skin sensitization test plus antibacterial activity were also measured. Side effect tests on 70 white mice in vivo resulted in only 3-4 abnormal situations in hepatic tissue section possibly due to the idiosyncratic drug reactions.
基于精细多孔 ZnO 量子点纳米颗粒 (QD NPs) 的纳米制剂可为医学应用提供强大的潜力,特别是在癌症治疗方面。通过溶胶-凝胶水热法、快速冷淬和进一步的智能表面功能化方法合成了 ZnO QD NPs,以获得超小尺寸(1-4nm)的 NPs。在我们的纳米流体配方中考虑了 ZnO 纳米聚合物、润湿剂、PEG 共溶剂和水/油乳液稳定剂。通过 SEM、FTIR、光致发光、带隙能量、Zeta 电位和紫外可见光谱对所得纳米流体进行了表征。通过 MTT 测定评估了纳米制剂对四种癌细胞系生长的细胞毒性作用。KB44、MCF-7、HT29 和 HeLa 细胞的 IC(µg/ml)值分别为 30、41、40 和 35,表明该纳米制剂对这些细胞系的细胞毒性作用呈浓度依赖性(p<0.05)。与正常 HFF-2(IC=105µg/ml)相比,ZnO 纳米流体更有效地破坏癌细胞系。对培养细胞进行凋亡诱导的细胞活力降低是对 ZnO 纳米流体处理的反应。还测量了皮肤致敏试验和抗菌活性。体内对 70 只小白鼠进行的副作用试验仅导致肝组织切片中出现 3-4 种异常情况,可能是由于药物的特异反应。