Zinc-doped hydroxyapatite loaded chitosan gelatin nanocomposite scaffolds as a promising platform for bone regeneration.

Sakchi Bhushan, Sandhya Singh, Tushar Kanti Maiti, Ankita Das, Ananya Barui, Leena R Chaudhari, Meghnad G Joshi, Dharm Dutt
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Abstract

The advancement in the arena of bone tissue engineering persuades us to develop novel nanocomposite scaffolds in order to improve antibacterial, osteogenic, and angiogenic properties that show resemblance to natural bone extracellular matrix. Here, we focused on the development of novel zinc-doped hydroxyapatite (ZnHAP) nanoparticles (1, 2 and 3 wt%; size: 50-60 nm) incorporated chitosan-gelatin (CG) nanocomposite scaffold, with an interconnected porous structure. The addition of ZnHAP nanoparticles decreases the pore size (∼30 µm) of the CG scaffolds. It was observed that with the increase in the concentration of ZnHAP nanoparticles (3 wt%) in CG scaffolds, the swelling ratio (1760% ± 2.0%), porosity (71% ± 0.98%) and degradation rate (35%) decreased, whereas mechanical property (1 MPa) increased, which was better as compared to control (CG) samples. Similarly, the high deposition of apatite crystals especially CG-ZnHAP3nanocomposite scaffold revealed the excellent osteoconductive potential among all other scaffolds. MC3T3-E1 osteoblastic cells seeded with CG-ZnHAP nanocomposite scaffolds depicted better cell adhesion, proliferation and differentiation to osteogenic lineages. Finally, the chorioallantoic membrane (CAM) assay revealed better angiogenesis of ZnHAP nanoparticles (3 wt%) loaded CG scaffolds supporting vascularization after 7th day incubation in the CAM area. Overall, the results showed that the CG-ZnHAP3nanocomposite scaffold could be a potential candidate for bone defect repair.

锌掺杂羟基磷灰石负载壳聚糖明胶纳米复合支架作为骨再生的良好平台。
骨组织工程领域的进步促使我们开发新型纳米复合材料支架,以提高抗菌、成骨和血管生成性能,表现出与天然骨细胞外基质相似。本文主要研究了新型锌掺杂羟基磷灰石(ZnHAP)纳米颗粒(1、2和3 wt%;尺寸:50- 60nm)加入壳聚糖-明胶纳米复合支架,具有相互连接的多孔结构。ZnHAP纳米颗粒的加入使壳聚糖明胶支架的孔径减小(~30µm)。结果表明,随着ZnHAP纳米颗粒浓度(3 wt%)的增加,CG支架的溶胀率(1374%)、孔隙率(68%)和降解率(35%)降低,力学性能(1 MPa)提高。纳米ZnHAP颗粒在CG支架上沉积磷灰石晶体,显示了纳米复合支架良好的骨传导潜能。CG-ZnHAP纳米复合材料支架培养的MC3T3-E1成骨细胞对成骨谱系具有较好的粘附、增殖和分化能力。最后,CAM实验显示更好的血管生成支持血管化。综上所述,CG-ZnHAP3纳米复合支架可能是骨缺损修复的潜在候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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