Design, Characterization and in vitro Simulations of nano-HAP/GO Composite Drug Delivery System Produced by Hydrothermal Methods Loaded with Paclitaxel

F. Çiftçi
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引用次数: 1

Abstract

In this study, it was aimed to develop a nano drug system that can be used in passive targeting in pancreatic cancer treatment. Hydroxyapatite nanocrystals (n-HAP) produced by hydrothermal process and graphene oxide (GO) produced by hummers method were used to increase the carrier capacity of the nano drug system and to activate the drug release kinetics and drug loading capacity. Analyses performed for nanocomposite drug carrier systems; FT-IR, XRD, TGA, BET analysis, Zeta potential, TEM and SEM. Paclitaxel (PTX), a chemotherapeutic drug used in the treatment of pancreatic cancer, was loaded into HAP nanocrystals (PTX- loaded n-HAP) and its activity on pancreatic cancer cells was investigated. When PTX was 1 and 2 mg, Encapsulation Efficiency (EE) and Drug Loading Content (LC) were 79.17-72.24% and 80.01-80.27%, respectively, for H-n-HAP crystal structure only, while EE and LC were 88.57-81.57% and 90.84-110.57%, respectively, when H-n-HAP crystal structure was loaded with 1 and 2 mg PTX together with GO. Here, it was observed PTX release profiles are according to the Hixson model. According to Fick's law, release profile was observed with values of k=1.89, n=0.21, SSD=0.04, R2=0.997, FIC=2.03, SD=0.004. In cell culture studies, as GO nanomaterials were loaded into H-n-HAP nanocrystal structure, the effect of PTX drug on pancreatic cancer increased and the viability of cancer cells decreased. It can be concluded that H-n-HAP/GO/PTX nanocomposite structure kills more pancreatic cancer cells with synergistic effect.
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水热法制备纳米羟基磷灰石/氧化石墨烯复合给药系统的设计、表征及体外模拟
本研究旨在开发一种可用于胰腺癌被动靶向治疗的纳米药物系统。采用水热法制备羟基磷灰石纳米晶(n-HAP)和hummers法制备氧化石墨烯(GO),提高纳米药物体系的载药量,激活药物释放动力学和载药量。纳米复合药物载体系统的分析;FT-IR, XRD, TGA, BET分析,Zeta电位,TEM和SEM。将用于胰腺癌治疗的化疗药物紫杉醇(PTX)装载到HAP纳米晶体(PTX-负载n-HAP)中,研究其对胰腺癌细胞的活性。当PTX为1和2 mg时,仅H-n-HAP晶体结构的包封效率(EE)和载药量(LC)分别为79.17 ~ 72.24%和80.01 ~ 80.27%,而当PTX和GO分别为1和2 mg时,H-n-HAP晶体结构的EE和LC分别为88.57 ~ 81.57%和90.84 ~ 110.57%。在这里,观察到PTX释放曲线是根据Hixson模型。根据菲克定律,释放曲线的k=1.89, n=0.21, SSD=0.04, R2=0.997, FIC=2.03, SD=0.004。在细胞培养研究中,随着氧化石墨烯纳米材料被加载到H-n-HAP纳米晶体结构中,PTX药物对胰腺癌的作用增强,癌细胞活力下降。由此可见,H-n-HAP/GO/PTX纳米复合结构具有协同杀伤更多胰腺癌细胞的作用。
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