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基于天然聚合物的氧化石墨烯生物纳米复合水凝胶珠:具有药物递送先进潜力的超结构

Natural Polymer-Based Graphene Oxide Bio-nanocomposite Hydrogel Beads: Superstructures with Advanced Potentials for Drug Delivery.

作者信息

Rehman Sadia, Madni Asadullah, Jameel Qazi Adnan, Usman Faisal, Raza M Rafi, Ahmad Faiz, Shoukat Hina, Aali Hamdan, Shafiq Afifa

机构信息

Department of Pharmaceutics, Faculty of Pharmacy, The Islamia University of Bahawalpur, Bahawalpur, Pakistan.

Department of Pharmaceutics, Faculty of Pharmacy, Bahauddin Zakariya University, Multan, Pakistan.

出版信息

AAPS PharmSciTech. 2022 Nov 17;23(8):304. doi: 10.1208/s12249-022-02456-w.

Abstract

The current study sought to create graphene oxide-based superstructures for gastrointestinal drug delivery. Graphene oxide has a large surface area that can be used to load anti-cancer drugs via non-covalent methods such as surface adsorption and hydrogen bonding. To enhance the bio-applicability of graphene oxide, nano-hybrids were synthesized by encapsulating the graphene oxide into calcium alginate hydrogel beads through the dripping-extrusion technique. These newly developed bio-nanocomposite hybrid hydrogel beads were evaluated in structural analysis, swelling study, drug release parameters, haemolytic assay, and antibacterial activity. Doxorubicin served as a model drug. The drug entrapment efficiency was determined by UV-spectroscopy analysis and was found to be high at ⁓89% in graphene oxide hybrid hydrogel beads. These fabricated hydrogel beads ensure the drug release from a hybrid polymeric matrix in a more controlled and sustained pattern avoiding the problems associated with a non-hybrid polymeric system. The drug release study of 12 h shows about 83% release at pH 6.8. In vitro drug release kinetics proved that drug release was a Fickian mechanism. The cytotoxic effect of graphene oxide hybrid alginate beads was also determined by evaluating the morphology of bacterial cells and red blood cells after incubation. Additionally, it was determined that the sequential encapsulation of graphene oxide in alginate hydrogel beads hides its uneven edges and lessens the graphene oxide's negative impacts. Also, the antibacterial study and biocompatibility of fabricated hydrogel beads made them potential candidates for gastrointestinal delivery.

摘要

当前的研究旨在创建用于胃肠道药物递送的基于氧化石墨烯的超结构。氧化石墨烯具有较大的表面积,可通过表面吸附和氢键等非共价方法用于负载抗癌药物。为了提高氧化石墨烯的生物适用性,通过滴注挤出技术将氧化石墨烯封装到海藻酸钙水凝胶珠中,合成了纳米杂化物。对这些新开发的生物纳米复合杂化水凝胶珠进行了结构分析、溶胀研究、药物释放参数、溶血试验和抗菌活性评估。阿霉素用作模型药物。通过紫外光谱分析测定药物包封率,发现氧化石墨烯杂化水凝胶珠中的包封率很高,约为89%。这些制备的水凝胶珠确保药物以更可控和持续的方式从杂化聚合物基质中释放,避免了与非杂化聚合物系统相关的问题。12小时的药物释放研究表明,在pH 6.8时释放约83%。体外药物释放动力学证明药物释放是一种菲克扩散机制。通过评估孵育后细菌细胞和红细胞的形态,还确定了氧化石墨烯杂化藻酸盐珠的细胞毒性作用。此外,还确定了氧化石墨烯在海藻酸盐水凝胶珠中的顺序封装掩盖了其不均匀的边缘,并减轻了氧化石墨烯的负面影响。而且,制备的水凝胶珠的抗菌研究和生物相容性使其成为胃肠道递送的潜在候选物。

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