Biomaterials in Medicinal Chemistry Laboratory, Department of Natural Products Chemistry, School of Chemistry, Madurai Kamaraj University, Madurai 625021, Tamil Nadu, India.
Department of Inorganic Chemistry, School of Chemistry, Madurai Kamaraj University, Madurai 625021, Tamil Nadu, India.
Biomed Pharmacother. 2019 Feb;110:906-917. doi: 10.1016/j.biopha.2018.12.008. Epub 2018 Dec 17.
The adaptability, joint with a large surface area, electronic flexibility, high intrinsic mobility, high mechanical strength and supreme thermal conductivity have condensed graphene family materials attractive as technological tools of the drug delivery system. In this present study, investigate a modified graphene oxide-methyl acrylate (GO-g-MA) nanocarrier for targeted anti-cancer drug delivery in breast cancer cells and the GO-g-MA fascinated with folic acidas a targeting ligand to target the cancer cells. Paclitaxel (PTX) was assembled through π-π stacking, hydrophophic interaction on the surface of the GO-g-MA/FA carrier. Structural modification of GO-g-MA, functionalization of targeting ligands GO-g-MA/FA and drug loaded GO-g-MA/FA-PTX was characterized and confirmed through FTIR, XRD, SEM,TEM and AFM analysis. The in-vitro drug release pattern of PTX from the GO-g-MA/FA was examined in different pH ranges. An MTT assay was performed to evaluate the cytotoxicity behaviour of the carrier and PTX loaded nanocarrier in the human breast cancer cell line (MDA-MB-231). GO-g-MA/FA-PTX carrier showed that 39% of cytotoxic effect. Furthermore, the in-vivo (DMBA induced breast cancer rats) studies were carried out and treatment with PTX- loaded GO-g-MA/FA nanocarrier attenuates the levels of mitochondrial citric acids enzymes to near normal.
石墨烯家族材料具有适应性强、比表面积大、电子柔韧性好、本征迁移率高、机械强度高、热导率高等特点,因此作为药物传递系统的技术工具具有吸引力。在本研究中,我们研究了一种改性氧化石墨烯-甲基丙烯酸酯(GO-g-MA)纳米载体,用于在乳腺癌细胞中靶向抗癌药物输送,并且 GO-g-MA 被叶酸作为靶向配体吸引,以靶向癌细胞。紫杉醇(PTX)通过π-π堆积、表面的疏水相互作用组装在 GO-g-MA/FA 载体上。GO-g-MA 的结构修饰、靶向配体 GO-g-MA/FA 的功能化以及负载药物的 GO-g-MA/FA-PTX 通过 FTIR、XRD、SEM、TEM 和 AFM 分析进行了表征和确认。在不同的 pH 范围内研究了 PTX 从 GO-g-MA/FA 中的体外药物释放模式。通过 MTT 测定法评估了载体和负载 PTX 的纳米载体在人乳腺癌细胞系(MDA-MB-231)中的细胞毒性行为。GO-g-MA/FA-PTX 载体显示出 39%的细胞毒性作用。此外,还进行了体内(DMBA 诱导的乳腺癌大鼠)研究,并用负载 PTX 的 GO-g-MA/FA 纳米载体治疗可将柠檬酸酶的线粒体水平降低到接近正常水平。