Institut Jean Lamour (IJL), UMR CNRS 7198, Université de Lorraine, Department N2EV, Parc de Saurupt CS50840, 54011 Nancy, France; Laboratory of Materials, Catalysis, Environment and Analytical Methods, Faculty of Sciences I, Lebanese University, Campus Rafic Hariri, Beirut, Lebanon.
Institut Jean Lamour (IJL), UMR CNRS 7198, Université de Lorraine, Department N2EV, Parc de Saurupt CS50840, 54011 Nancy, France; Unité Nanomatériaux et Photonique, Département de physique, Faculté des sciences de Tunis El Manar, 2092 Tunis, Tunisia.
Int J Pharm. 2017 Nov 5;532(2):738-747. doi: 10.1016/j.ijpharm.2017.09.019. Epub 2017 Sep 8.
The unique physical properties of the superparamagnetic nanoparticles (SPIONs) have made them candidates of choice in nanomedicine especially for diagnostic imaging, therapeutic applications and drug delivery based systems. In this study, superparamagnetic FeO NPs were synthesized and functionalized with a biocompatible thermoresponsive copolymer to obtain temperature responsive core/shell NPs. The ultimate goal of this work is to build a drug delivery system able to release anticancer drugs in the physiological temperatures range. The core/shell NPs were first synthesized and their chemical, physical, magnetic and thermo-responsive properties where fully characterized in a second step. The lower critical solution temperature (LCST) of the core/shell NPs was tuned in physiological media in order to release the cancer drug at a controlled temperature slightly above the body temperature to avoid any premature release of the drug. The core/shell NPs exhibiting the targeted LCST were then loaded with Doxurubicin (DOX) and the drug release properties were then studied with the temperature. Moreover the cytotoxicity tests have shown that the core/shell NPs had a very limited cytotoxicity up to concentration of 25μg/mL. This investigation showed that the significant release occurred at the targeted temperature in the physiological media making those nano-systems very promising for further use in drug delivery platform.
超顺磁纳米粒子(SPIONs)具有独特的物理性质,使其成为纳米医学的首选候选材料,特别是在诊断成像、治疗应用和药物输送系统方面。在本研究中,合成了超顺磁 FeO 纳米粒子,并对其进行了生物相容性的温敏共聚物功能化,以获得温度响应的核/壳纳米粒子。这项工作的最终目标是构建一种能够在生理温度范围内释放抗癌药物的药物输送系统。首先合成了核/壳纳米粒子,并在第二步中对其化学、物理、磁和温敏特性进行了全面表征。为了在控制温度下释放药物,避免药物过早释放,将核/壳纳米粒子的低临界溶液温度(LCST)在生理介质中进行了调谐。然后,将具有靶向 LCST 的核/壳纳米粒子装载多柔比星(DOX),并研究了温度对药物释放性能的影响。此外,细胞毒性试验表明,核/壳纳米粒子的细胞毒性非常有限,在 25μg/mL 的浓度下。这项研究表明,在生理介质中的目标温度下发生了显著的释放,这使得这些纳米系统非常有希望进一步用于药物输送平台。