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Effects of Magnesium Oxide (MgO) Shapes on In Vitro and In Vivo Degradation Behaviors of PLA/MgO Composites in Long Term

机译:氧化镁(MgO)形状对PLA / MgO复合材料长期体外和体内降解行为的影响

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摘要

Biodegradable devices for medical applications should be with an appropriate degradation rate for satisfying the various requirements of bone healing. In this study, composite materials of polylactic acid (PLA)/stearic acid-modified magnesium oxide (MgO) with a 1 wt% were prepared through blending extrusion, and the effects of the MgO shapes on the composites’ properties in in vitro and in vivo degradation were investigated. The results showed that the long-term degradation behaviors of the composite samples depended significantly on the filler shape. The degradation of the composites is accelerated by the increase in the water uptake rate of the PLA matrix and the composite containing the MgO nanoparticles was influenced more severely by the enhanced hydrophilicity. Furthermore, the pH value of the phosphate buffer solution (PBS) was obviously regulated by the dissolution of MgO through the neutralization of the acidic product of the PLA degradation. In addition, the improvement of the in vivo degrading process of the composite illustrated that the PLA/MgO materials can effectively regulate the degradation of the PLA matrix as well as raise its bioactivity, indicating the composites for utilization as a biomedical material matching the different requirements for bone-related repair.
机译:用于医疗应用的可生物降解设备应具有合适的降解速率,以满足骨骼愈合的各种要求。本研究通过共混挤出制备了重量百分比为1%的聚乳酸(PLA)/硬脂酸改性氧化镁(MgO)复合材料,以及MgO形状对复合材料在体外和体外的性能的影响。研究了体内降解。结果表明,复合材料样品的长期降解行为明显取决于填料的形状。 PLA基质吸水率的提高促进了复合材料的降解,亲水性增强对含有MgO纳米颗粒的复合材料的影响更为严重。此外,磷酸盐缓冲溶液(PBS)的pH值显然是通过中和PLA降解的酸性产物而溶解MgO来调节的。此外,复合材料体内降解过程的改进表明,PLA / MgO材料可以有效地调节PLA基质的降解并提高其生物活性,这表明该复合材料可用作满足不同要求的生物医学材料。用于骨骼相关的修复。

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