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首页> 外文期刊>Journal of Materials Science >Synthesis and characterization of mechanically strong carboxymethyl cellulose-gelatin-hydroxyapatite nanocomposite for load-bearing orthopedic application
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Synthesis and characterization of mechanically strong carboxymethyl cellulose-gelatin-hydroxyapatite nanocomposite for load-bearing orthopedic application

机译:机械强羧甲基纤维素 - 明胶 - 羟基磷灰石纳米复合材料的合成与表征,用于承载整形外科应用

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Novel three-dimensional hybrid polymer-hydroxyapatite nanocomposites have been developed as load-bearing synthetic bone graft through in situ mineralization process, using natural polymers carboxymethyl cellulose (CMC) and gelatin (Gel) as matrix. This process is simple and does not involve any chemical cross-linker. Detailed structural and physicochemical characterization of the samples disclosed that incorporation of gelatin with CMC assists the formation of CMC-Gel polymeric network of new conformational structure through non-covalent interactions (H-bond). The formation of hydroxyapatite (HA) in this polymeric network was occurred in such a fashion that the HA serves as bridging molecule which strengthen the polymeric network more and formed a mechanically strong three-dimensional CMC-Gel-HA nanocomposite. The synthesized CMC-Gel-HA nanocomposites have compressive strength and modulus in the range of 40-86 MPa and 0.4-1.2 GPa, respectively, analogous to human cancellous as well as cortical bone. In vitro cell interaction of the synthesized nanocomposites with osteoblast-like MG-63 cells has been evaluated. Results showed that synthesized CMC-Gel-HA nanocomposite promote cells for high alkaline phosphatase activity and extracellular mineralization. Extracellular mineralization ability of nanocomposite was investigated by alizarin red staining and von Kossa staining. Biodegradable nature and bone apatite formation ability of CMC-Gel-HA nanocomposite under simulated physiological environment were investigated by different characterization processes. Results indicated that the synthesized CMC-Gel-HA nanocomposite has great potential to be used as regenerative bone graft in major load-bearing region.
机译:新颖的三维杂化聚合物 - 羟基磷灰石纳米复合材料已经开发为承载合成骨移植,通过原位矿化过程,使用天然聚合物羧甲基纤维素(CMC)和明胶(凝胶)作为基质。该过程简单,不涉及任何化学交联剂。样品的详细结构和物理化学表征公开了通过CMC掺入明胶,通过非共价相互作用(H键)来形成新的构象结构的CMC-凝胶聚合物网络。在这种聚合物网络中形成羟基磷灰石(HA)的形成,使得HA用作桥接分子,其更加强化聚合物网络,并形成机械强的三维CMC-GEL-HA纳米复合材料。合成的CMC-GEL-HA纳米复合材料分别具有40-86MPa和0.4-1.2GPa的压缩强度和模量,类似于人松质以及皮质骨。已经评估了合成的纳米复合材料与成骨细胞样MG-63细胞的体外细胞相互作用。结果表明,合成的CMC-GEL-HA纳米复合二选促进细胞高碱性磷酸酶活性和细胞外矿化。通过茜素红染色和von Kossa染色研究了纳米复合材料的细胞外矿化能力。不同特征过程研究了模拟生理环境下CMC-GEL-HA纳米复合物的可生物降解性质和骨磷灰石形成能力。结果表明,合成的CMC-GEL-HA纳米复合材料具有很大的潜力,可用作主要承载区域中的再生骨移植物。

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