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首页> 外文期刊>Key Engineering Materials >Preparation of Nano-Hydroxyapatite/Poly(D,L-lactide) Composite and Its Degradation in Femora of Rabbits
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Preparation of Nano-Hydroxyapatite/Poly(D,L-lactide) Composite and Its Degradation in Femora of Rabbits

机译:纳米羟基磷灰石/聚(D,L-丙交酯)复合材料的制备及其在兔股骨中的降解

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摘要

With the outstanding biocompatibility of hydroxyapatite (HA) and biodegradation of poly(D,L)lactide(PDLLA), and the expected good bio-mechanical compatibility, nano-HA / PDLLA (n-HA/PDLLA)composite has been paid great interests in hard tissue repair. One of the key factors affecting the potential of the composite is the degradation of the composite. That is what the mechanism of degradation in the composite is and if the degradation of the materials would induce the crack of the composite or a porous structure facile for tissue ingrowth would be formed. In this study, an n-HA/ PDLLA composite containing about 40% n-HA (wt%) was prepared and the degradation of the composite in bony tissue of rabbits and tissue response were studied by implanting composite rods and control HA rods into the femora of 16 New Zealand rabbits. After definite intervals, the histological analysis was completed by light microscopy and the degradation behavior was observed by scanning electron microscopy. The results suggested that a nano-HA/PDLLA composite was obtained and the materials showed good biocompatibility and osteoconductivity. The substantial degradation of the composite occurred at 8 weeks in vivo. After a longer period of implantation, the further degradation of the composite led to the formation of interconnected microporous and macroporous structure in the materials that might facilitate the tissue ingrowth in the composite.
机译:随着羟基磷灰石(HA)的出色生物相容性和聚(D,L)丙交酯(PDLLA)的生物降解以及预期的良好生物机械相容性,纳米HA / PDLLA(n-HA / PDLLA)复合材料引起了人们的极大兴趣在硬组织修复中。影响复合材料潜力的关键因素之一是复合材料的降解。这就是复合材料降解的机理,并且如果材料的降解会引起复合材料的破裂,或者会形成易于组织向内生长的多孔结构。在这项研究中,制备了含有约40%n-HA(wt%)的n-HA / PDLLA复合材料,并通过将复合棒和对照HA棒植入兔的骨组织中研究了该复合材料在兔骨组织中的降解和组织反应。 16只新西兰兔的股骨。在确定的间隔后,通过光学显微镜完成组织学分析,并通过扫描电子显微镜观察降解行为。结果表明获得了纳米HA / PDLLA复合材料,该材料具有良好的生物相容性和骨传导性。复合材料的实质降解发生在体内8周。在较长时间的植入之后,复合材料的进一步降解导致材料中互连的微孔和大孔结构的形成,这可能促进复合材料中组织的向内生长。

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