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Preparation and biological properties of PLLA/β-TCP composites reinforced by chitosan fibers

机译:壳聚糖纤维增强PLLA /β-TCP复合材料的制备及生物学性能

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Chitosan fibers were introduced into a poly(L-lactic acid)/β-tricalcium phosphate (PLLA/β-TCP) matrix as reinforcement to prepare scaffold materials for bone tissue engineering with adequate initial strength and a feasible degradation rate. The structure and morphology of the composites were observed by a scanning electron microscope (SEM). The porosity of the composites was tested by Archimedes' method. The mechanical property of the composites was measured. Simulated body fluid (SBF) experiments were conducted to assess the bioactivity of the composites. The chemical components of resultants on surfaces were analyzed by Fourier transform infrared spectroscopy (FTIR). The influence of the addition of chitosan fibers on the pH value, mass loss rate and structure of samples during immersion was also discussed. The results show that the initial compressive strength reaches 16.07 MPa when the composites prepared have a porosity of 36%. With the degradation of chitosan fibers, an interconnected structure is earlier formed in situ throughout the scaffolds, which is favorable for new bone ingrowth. The compressive strength of the composite decreases flatly and still maintains at 5.28 MPa after immersion in SBF for 24 days. Meanwhile, the formation of a layer of bone-like apatites on the surfaces of the samples indicates good biological activity. It is concluded that the composites have a promising prospect as bone tissue engineering materials.
机译:将壳聚糖纤维引入到聚(L-乳酸)/β-磷酸三钙(PLLA /β-TCP)基质中作为增强材料,以适当的初始强度和可行的降解速率制备用于骨组织工程的支架材料。通过扫描电子显微镜(SEM)观察复合材料的结构和形态。通过阿基米德法测试复合材料的孔隙率。测量了复合材料的机械性能。进行了模拟体液(SBF)实验以评估复合材料的生物活性。通过傅立叶变换红外光谱(FTIR)分析了表面上生成物的化学成分。还讨论了添加壳聚糖纤维对浸泡过程中pH值,质量损失率和样品结构的影响。结果表明,当制备的复合材料的孔隙率为36%时,初始抗压强度达到16.07 MPa。随着壳聚糖纤维的降解,较早地在整个支架中原位形成了相互连接的结构,这有利于新的骨骼向内生长。浸入SBF中24天后,复合材料的抗压强度平稳下降,仍保持在5.28 MPa。同时,在样品表面上形成一层骨状磷灰石表明其具有良好的生物活性。结论是,复合材料作为骨组织工程材料具有广阔的前景。

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