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In vitro degradation of biodegradable polylactic acid/magnesium composites: Relevance of Mg particle shape

机译:可生物降解的聚乳酸/镁复合材料的体外降解:镁颗粒形状的相关性

摘要

Absorbable medical devices must be developed in order to have an appropriate degradation rate in agreement with the healing rate of bone in the implantation site. In this work, biodegradable composites formed by a polylactic acid matrix reinforced with 10% wt. magnesium microparticles were processed and their in vitro degradation investigated during 28 days. A joint analysis of the amount of H released, the changes in pH in buffered (PBS) and non-buffered media (distilled water), the variations in mass, microstructure and the mechanical performance of the specimens was developed. The main aim was to elucidate the relevance of Mg particles shape on tailoring the degradation kinetics of these novel composites. The results show that the shape of the Mg reinforcing particles plays a crucial role in the degradation rate of PLA/Mg composites, with spherical particles promoting a lower degradation rate than irregular particles. This fact is only partially due to the smaller surface area to volume ratio of the spherical particles. Irregular particles promote a faster formation of cracks and, therefore, an increasingly faster degradation of the polymeric matrix. In every case, the amount of H released by the composites was well below that released by monolithic Mg. The pH of PBS during degradation remained always within 7.2 and 7.4. PLA/Mg reinforced with spherical particles retains more than 90% of its mechanical properties after 7 days of immersion and more than 60% after 28 days. Statement of Significance The increasing demand for temporary orthopaedic implants is the driving force to seek new strategies to decrease costs and simultaneously improve patients comfort as well as simplify surgical procedures. Resorbable medical devices must be developed in order to have an appropriate degradation rate in agreement with the healing rate of bone. We are presenting for the first time results of the degradation kinetics of a new material based on polylactic acid reinforced with 10% wt. Mg microparticles. This work analyzes the relevance of Mg particle shape (irregular and spherical) on tailoring the degradation behaviour of these composites. Conclusions withdrawn from this study help to customize bioabsorbable materials in order to meet the requirements for a specific application and patient.
机译:必须开发可吸收的医疗设备,以使其具有合适的降解速率,使其与植入部位的骨的愈合速率一致。在这项工作中,可生物降解的复合材料由10%wt增强的聚乳酸基质形成。处理镁微粒,并在28天内研究其体外降解情况。联合分析了释放的H量,缓冲液(PBS)和非缓冲介质(蒸馏水)中pH的变化,质量,微观结构和样品机械性能的变化。主要目的是阐明镁颗粒形状与调整这些新型复合材料降解动力学的相关性。结果表明,Mg增强颗粒的形状在PLA / Mg复合材料的降解速率中起着至关重要的作用,球形颗粒的降解速率比不规则颗粒低。该事实仅部分是由于球形颗粒的表面积与体积之比较小。不规则的颗粒促进裂纹的更快形成,并因此促进聚合物基体的越来越快的降解。在每种情况下,复合材料释放的H量都远低于整体式Mg释放的H。降解过程中PBS的pH始终保持在7.2和7.4之内。球形颗粒增强的PLA / Mg在浸入7天后保留了90%以上的机械性能,在28天后保留了60%以上的机械性能。重要声明对临时整形外科植入物的需求不断增长,是寻求新策略以降低成本并同时改善患者舒适度并简化手术程序的驱动力。必须开发可吸收的医疗设备,以使其具有与骨骼的愈合速度相符的适当降解速度。我们首次展示了一种基于10%wt增强的聚乳酸的新材料的降解动力学结果。镁微粒。这项工作分析了镁颗粒形状(不规则和球形)与定制这些复合材料的降解行为的相关性。从这项研究中得出的结论有助于定制生物可吸收材料,以满足特定应用和患者的需求。

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