Inorganic Chemistry Laboratory, Department of Chemistry, Aligarh Muslim University, Aligarh 202002, India.
Molecular Immunology Group Lab, Interdisciplinary Biotechnology Unit, Aligarh Muslim University, Aligarh 202002, India.
Int J Biol Macromol. 2018 Nov;119:215-224. doi: 10.1016/j.ijbiomac.2018.07.128. Epub 2018 Jul 21.
In this work, we have explored the polysaccharide nature of bael fruit gum (BFG) motivated from the current findings about the substantial role of the polysaccharides in bone tissue engineering. The nanocomposite scaffold (CSH-BFG) was prepared by blending BFG, nano-hydroxyapatite (n-HA) and chitosan (CS) by co-precipitation approach and compared with n-HA and CS binary system (CSH). The analysis of different properties was carried out by SEM, TEM, FTIR, XRD and mechanical testing. The CSH-BFG scaffolds revealed a rough morphology and uniform distribution of particles along with strong chemical interactions among different components compared to the CSH scaffold. The incorporation of BFG in the scaffold resulted in significant increase of the compressive strength, compressive modulus, protein adsorption, biodegradation and swelling behaviour. The ternary system exhibited superior antibacterial activity against different bacterial pathogens compared to the binary system. The in vitro biomineralization ability was elucidated from the formation of thick apatite layer complementing the result of ARS study in the CSH-BFG nanocomposite. Our findings also revealed that BFG reinforced CSH nanocomposite exhibited enhanced cell adhesion and proliferation, osteogenic differentiation along with phenomenal cytocompatibility. Overall, our results signified that the fabricated CSH-BFG nanocomposite carries enormous potential to be applied in the bone remodelling procedures.
在这项工作中,我们从多糖在骨组织工程中发挥重要作用的现有发现出发,探索了百香果果胶 (BFG) 的多糖性质。通过共沉淀法将 BFG、纳米羟基磷灰石 (n-HA) 和壳聚糖 (CS) 混合制备纳米复合支架 (CSH-BFG),并与 n-HA 和 CS 二元系统 (CSH) 进行了比较。通过 SEM、TEM、FTIR、XRD 和力学测试对不同性质进行了分析。与 CSH 支架相比,CSH-BFG 支架具有粗糙的形貌和均匀的颗粒分布,以及不同成分之间的强化学相互作用。与支架相比,BFG 的加入导致抗压强度、抗压模量、蛋白质吸附、生物降解和溶胀行为显著增加。三元体系对不同细菌病原体的抗菌活性优于二元体系。体外生物矿化能力从形成厚的磷灰石层得到阐明,补充了 CSH-BFG 纳米复合材料中 ARS 研究的结果。我们的研究结果还表明,BFG 增强的 CSH 纳米复合材料表现出增强的细胞粘附和增殖、成骨分化以及显著的细胞相容性。总的来说,我们的结果表明,所制备的 CSH-BFG 纳米复合材料具有巨大的潜力应用于骨重塑过程。