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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Biomimetic chitosan-calcium phosphate composites with potential applications as bone substitutes: preparation and characterization.
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Biomimetic chitosan-calcium phosphate composites with potential applications as bone substitutes: preparation and characterization.

机译:仿生的壳聚糖-磷酸钙复合材料作为骨替代物的潜在应用:制备和表征。

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摘要

A novel biomimetic technique for obtaining chitosan-calcium phosphates (Cs-CP) scaffolds are presented: calcium phosphates are precipitated from its precursors, CaCl(2) and NaH(2) PO(4) on the Cs matrix, under physiological conditions (human body temperature and body fluid pH; 37°C and pH = 7.2, respectively). Materials composition and structure have been confirmed by various techniques: elemental analysis, Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), energy dispersive X-ray spectroscopy (EDX), and scanning electron microscopy (SEM). FTIR and SEM data have shown the arrangement of the calcium phosphates-hydroxyapatite (CP-Hap) onto Cs matrix. In this case the polymer is acting as glue, bonding the calcium phosphates crystals. Behavior in biological simulated fluids (phosphate buffer solution-PBS and PBS-albumin) revealed an important contribution of the chelation between -NH3(+) and Ca(2+) on the scaffold interaction with aqueous mediums; increased quantities of chitosan in composites permit the interaction with human albumin and improve the retention of fluid. The composites are slightly degraded by the lysozyme which facilitates an in vivo degradation control of bone substitutes. Modulus of elasticity is strongly dependent of the ratio chitosan/calcium phosphates and recommends the obtained biomimetic composites as promising materials for a prospective bone application.
机译:介绍了一种获得壳聚糖磷酸钙(Cs-CP)支架的新型仿生技术:在生理条件下,磷酸钙从其前体CaCl(2)和NaH(2)PO(4)沉淀在Cs基质上(人类体温和体液pH;分别为37°C和pH = 7.2)。材料的组成和结构已通过各种技术得到证实:元素分析,傅立叶变换红外光谱(FTIR),X射线衍射(XRD),能量色散X射线光谱(EDX)和扫描电子显微镜(SEM)。 FTIR和SEM数据表明磷酸钙-羟基磷灰石(CP-Hap)在Cs基质上的排列。在这种情况下,聚合物充当胶水,将磷酸钙晶体粘合在一起。在生物学模拟流体(磷酸盐缓冲溶液-PBS和PBS-白蛋白)中的行为揭示了-NH3(+)和Ca(2+)之间的螯合作用对支架与水介质的相互作用的重要贡献。复合物中壳聚糖含量的增加允许与人白蛋白的相互作用并改善流体的保留。溶菌酶使复合物轻微降解,这有助于骨替代物的体内降解控制。弹性模量强烈依赖于壳聚糖/磷酸钙的比例,并建议将获得的仿生复合材料用作有望应用于骨骼的材料。

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