Department of Chemistry, Faculty of Arts and Sciences, Kırıkkale University, Yahşihan, 71450, Kırıkkale, Turkey.
Department of Chemistry, Faculty of Arts and Sciences, Kırıkkale University, Yahşihan, 71450, Kırıkkale, Turkey.
Int J Biol Macromol. 2020 Dec 1;164:4499-4515. doi: 10.1016/j.ijbiomac.2020.09.002. Epub 2020 Sep 6.
Herein, thermo- and pH-sensitive pectin-graft-poly(dimethylaminoethyl methacrylate) copolymer-coated magnetic nanoparticles were synthesized via a green and rapid synthetic approach based on microwave irradiation. Firstly, a novel thermo- and pH-sensitive pectin-graft-poly(dimethylaminoethyl methacrylate) copolymer (Pec-g-PolyDMAEMA) was synthesized and then, Pec-g-PolyDMAEMA based magnetic nanoparticles (Pec-g-PolyDMAEMA@FeO) were produced via microwave-assisted co-precipitation method. The thermo/pH/magnetic field multi-sensitive hybrid nanoparticle was characterized by techniques like TEM, VSM, FT-IR, and TGA/DSC. In vitro release studies of 5-Fluorouracil (FL) were carried out by altering the temperature (37 and 44°C), pH (5.5 and 7.4) and presence of an AMF. The FL release of Pec-g-PolyDMAEMA@FeO@FL exhibited pH-sensitive behavior. They showed thermo/pH-sensitive FL release features with the greatest release of FL at 37°C (56%) than at 44°C (40%) and at pH of 7.4 (63%) than at pH of 5.5 (45%) within 48h. The FL release was also significantly increased (100%) with the presence of a 50 mT magnetic field. These results indicate that the developed Pec-g-PolyDMAEMA@FeO nanoparticles are promising in the application of multi-stimuli-sensitive delivery of drugs.
本文通过一种基于微波辐射的绿色快速合成方法,合成了温敏和 pH 敏感的果胶接枝聚(二甲氨基乙基甲基丙烯酸酯)共聚物包覆的磁性纳米粒子。首先,合成了一种新型的温敏和 pH 敏感的果胶接枝聚(二甲氨基乙基甲基丙烯酸酯)共聚物(Pec-g-PolyDMAEMA),然后通过微波辅助共沉淀法制备了基于 Pec-g-PolyDMAEMA 的磁性纳米粒子(Pec-g-PolyDMAEMA@FeO)。采用 TEM、VSM、FT-IR 和 TGA/DSC 等技术对热/pH/磁场多敏感杂化纳米粒子进行了表征。通过改变温度(37 和 44°C)、pH(5.5 和 7.4)和外加 AMF,进行了 5-氟尿嘧啶(FL)的体外释放研究。Pec-g-PolyDMAEMA@FeO@FL 的 FL 释放表现出 pH 敏感性。它们表现出热/pH 敏感的 FL 释放特征,在 37°C(56%)的释放量大于在 44°C(40%)的释放量,在 pH 为 7.4(63%)的释放量大于在 pH 为 5.5(45%)的释放量,在 48 小时内。在存在 50 mT 磁场的情况下,FL 的释放也显著增加(100%)。这些结果表明,所开发的 Pec-g-PolyDMAEMA@FeO 纳米粒子在药物多刺激敏感递药方面具有应用前景。