首页> 美国卫生研究院文献>Biomolecules >Development and Optimization of the Novel Fabrication Method of Highly Macroporous Chitosan/Agarose/Nanohydroxyapatite Bone Scaffold for Potential Regenerative Medicine Applications
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Development and Optimization of the Novel Fabrication Method of Highly Macroporous Chitosan/Agarose/Nanohydroxyapatite Bone Scaffold for Potential Regenerative Medicine Applications

机译:潜在的再生医学应用大孔壳聚糖/琼脂糖/纳米羟基磷灰石骨支架新型制备方法的开发与优化

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摘要

Bone scaffolds mimicking the three-dimensional bone structure are of essential importance for bone regeneration. The aim of this study was to develop and optimize the production method of highly macroporous bone scaffold composed of polysaccharide matrix (chitosan–agarose) reinforced with nanohydroxyapatite. The highly macroporous structure was obtained by the simultaneous application of a gas-foaming agent and freeze-drying technique. Fabricated variants of biomaterials (produced using different gas-foaming agent and solvent concentrations) were subjected to porosity evaluation and compression test in order to select the scaffold with the best properties. Then, bioactivity, cytotoxicity, and cell growth on the surface of the selected biomaterial were assessed. The obtained results showed that the simultaneous application of gas-foaming and freeze-drying methods allows for the production of biomaterials characterized by high total and open porosity. It was proved that the best porosity is obtained when solvent (CH3COOH) and foaming agent (NaHCO3) are applied at ratio 1:1. Nevertheless, the high porosity of novel biomaterial decreases its mechanical strength as determined by compression test. Importantly, novel scaffold is non-toxic to osteoblasts and favors cell attachment and growth on its surface. All mentioned properties make the novel biomaterial a promising candidate to be used in regenerative medicine in non-load bearing implantation sites.
机译:模仿三维骨骼结构的骨支架对于骨骼再生至关重要。这项研究的目的是开发和优化由纳米羟基磷灰石增强的多糖基质(壳聚糖-琼脂糖)组成的高度大孔骨支架的生产方法。通过同时施加气体发泡剂和冷冻干燥技术获得高度大孔结构。对生物材料的制造变体(使用不同的气体发泡剂和溶剂浓度生产)进行孔隙率评估和压缩测试,以选择具有最佳性能的支架。然后,评估所选生物材料表面的生物活性,细胞毒性和细胞生长。所得结果表明,同时使用气体发泡和冷冻干燥方法可以生产出具有高总孔隙率和开放孔隙率的生物材料。事实证明,当溶剂(CH3COOH)和发泡剂(NaHCO3)的比例为1:1时,孔隙率最佳。然而,如压缩试验所确定的那样,新型生物材料的高孔隙率降低了其机械强度。重要的是,新型支架对成骨细胞无毒,有利于细胞附着和在其表面生长。所有提到的特性使这种新型生物材料成为非负荷植入部位再生医学中使用的有前途的候选者。

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