Cerium oxide nanoparticles disseminated chitosan gelatin scaffold for bone tissue engineering applications

脚手架 明胶 壳聚糖 纳米复合材料 组织工程 化学 骨愈合 纳米颗粒 材料科学 氧化铈 生物医学工程 化学工程 纳米技术 氧化物 生物化学 有机化学 工程类 生物 医学 遗传学
作者
Sakchi Bhushan,Sandhya Singh,Tushar Kanti Maiti,Ankita Das,Ananya Barui,Leena R. Chaudhari,Meghnad G. Joshi,Dharm Dutt
出处
期刊:International Journal of Biological Macromolecules [Elsevier]
卷期号:236: 123813-123813 被引量:24
标识
DOI:10.1016/j.ijbiomac.2023.123813
摘要

Cell-free and cell-loaded constructs are used to bridge the critical-sized bone defect. Oxidative stress at the site of the bone defects is a major interference that slows bone healing. Recently, there has been an increase in interest in enhancing the properties of three-dimensional scaffolds with free radical scavenging materials. Cerium oxide nanoparticles (CNPs) can scavenge free radicals due to their redox-modulating property. In this study, freeze-drying was used to fabricate CG-CNPs nanocomposite scaffolds using gelatin (G), chitosan (C), and cerium oxide nanoparticles. Physico-chemical, mechanical, and biological characterization of CG-CNPs scaffolds were studied. CG-CNPs scaffolds demonstrated better results in terms of physicochemical, mechanical, and biological properties as compared to CG-scaffold. CG-CNPs scaffolds were cyto-friendly to MC3T3-E1 cells studied by performing in-vitro and in-ovo studies. The scaffold's antimicrobial study revealed high inhibition zones against Gram-positive and Gram-negative bacteria. With 79 % porosity, 45.99 % weight loss, 178.25 kPa compressive modulus, and 1.83 Ca/P ratio, the CG-CNP2 scaffold displays the best characteristics. As a result, the CG-CNP2 scaffolds are highly biocompatible and could be applied to repair bone defects.
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