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Spherical calcium phosphate nanoparticle fillers allow polymer processing of bone fixation devices with high bioactivity

机译:球形磷酸钙纳米颗粒填料可对具有高生物活性的骨固定装置进行聚合物加工

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摘要

Treatment of bone defects generally requires a fixation device. Biodegradable implants can often prevent second operations in contrast to metallic implants that are surgically removed after healing. In this study, we investigate the preparation of a bone fixation device with additional bioactivity by adding nanoparticulate amorphous tricalcium phosphate (ATCP) to improve bonding to bone. Medically approved poly(lactide-co-glycolide) (PLGA) and spherical (ATCP) nanoparticles were blended directly or through a two-step approach, where ATCP was first dispersed in PLGA by solvent casting, extruded and hot pressed producing blocks and bone screws. The latter route yielded good particle dispersion while blending alone led to inhomogeneous mixtures. Samples were immersed in simulated body fluid and showed rapid formation of surface hydroxyapatite layers (examined by X-ray diffraction and scanning electron microscopy) already after 3 days, thus confirming very high bioactivity. Polymer degradation during processing and upon simulated implantation conditions was followed by gel permeation chromatography. The elevated temperature during extrusion was the strongest single factor contributing to PLGA degradation. Screws could be machined out of extruded cylinders and demonstrated the ability to process PLGA/ATCP 90/10 composites with regular workshop tools. These properties suggest the use of such composites as improved, bioactive, and degradable bone fixation systems particularly in oral and maxillofacial surgery. POLYM. ENG. SCI., 50:952-960, 2010. (C) 2009 Society of Plastics Engineers
机译:骨缺损的治疗通常需要固定装置。与在愈合后通过手术移除的金属植入物相比,可生物降解的植入物通常可以防止第二次手术。在这项研究中,我们通过添加纳米微粒无定形磷酸三钙(ATCP)来改善与骨骼的结合力,从而研究具有额外生物活性的骨固定装置的制备。将医学批准的聚丙交酯-乙交酯共聚物(PLGA)和球形(ATCP)纳米颗粒直接混合或通过两步法进行混合,其中首先通过溶剂浇铸,挤出和热压生产块以及接骨螺钉将ATCP分散在PLGA中。后一种途径产生良好的颗粒分散性,而单独混合会导致混合物不均匀。将样品浸入模拟的体液中,并显示3天后迅速形成了表面羟基磷灰石层(通过X射线衍射和扫描电子显微镜检查),因此确认了非常高的生物活性。聚合物在加工过程中以及在模拟的植入条件下降解,然后进行凝胶渗透色谱分析。挤出过程中升高的温度是导致PLGA降解的最强因素。可以从挤出的圆柱体中加工出螺钉,并证明了使用常规车间工具加工PLGA / ATCP 90/10复合材料的能力。这些性质表明,尤其在口腔和颌面外科手术中,使用了这样的复合材料,如改进的,具有生物活性和可降解的骨固定系统。 POLYM。 ENG。 SCI。,50:952-960,2010.(C)2009塑料工程师学会

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