Facile synthesis of copolymerized cellulose grafted hydrogel doped calcium oxide nanocomposites with improved antioxidant activity for anti-arthritic and controlled release of doxorubicin for anti-cancer evaluation

自愈水凝胶 纳米复合材料 药物输送 材料科学 丙烯酸 阿霉素 纤维素 化学 化学工程 纳米技术 有机化学 高分子化学 聚合物 单体 化疗 外科 工程类 医学
作者
Iram Shahzadi,Md. Mohaimenul Islam,Hamid Saeed,Anum Shahzadi,Junaid Haider,Ali Haider,Muhammad Imran,Hassaan Anwer Rathore,Anwar Ul‐Hamid,Walid Nabgan,Muhammad Ikram
出处
期刊:International Journal of Biological Macromolecules [Elsevier]
卷期号:235: 123874-123874 被引量:47
标识
DOI:10.1016/j.ijbiomac.2023.123874
摘要

The combination treatment is considered an approach to attaining synergistic impact while minimizing applied dosage. Hydrogels are analogous to the tissue environment attributed to hydrophilic and porous structure. Despite extensive study in biological and biotechnological domains, their restricted mechanical strength and limited functionalities impede their potential uses. Emerging strategies are centred on research and developing nanocomposite hydrogels to combat these issues. Herein, we prepared copolymerized hydrogel by grafting poly-acrylic acid P(AA) onto cellulose nanocrystals (CNC) and adding CNC-g-PAA as dopant (2 and 4 wt%) in calcium oxide (CaO) nanoparticles to generate an effective hydrogel doped nanocomposite (NCH) (CNC-g-PAA/CaO) for biomedical applications such as anti-arthritic, anti-cancer, and antibacterial investigations alongside their comprehensive characterization. CNC-g-PAA/CaO (4 %), compared to other samples, had a substantially higher antioxidant potential (72.21 %). Doxorubicin, a potential chemotherapeutic drug, was then effectively loaded into NCH (99 %) via electrostatic interaction, and pH-triggered based release was found to be >57.9 % in 24 h. Furthermore, molecular docking investigation against targeted protein Cyclin-dependent kinase 2 and in vitro cytotoxicity study verified the improved antitumor effectiveness of CNC-g-PAA and CNC-g-PAA/CaO. These outcomes indicated that hydrogels might serve as potential delivery vehicles for innovative multifunctional biomedical applications.
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