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Incorporation of biodegradable electrospun fibers into calcium phosphate cement for bone regeneration.

机译:将可生物降解的电纺纤维掺入磷酸钙水泥中以进行骨再生。

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摘要

Inherent brittleness and slow degradation are the major drawbacks for the use of calcium phosphate cements (CPCs). To address these issues, biodegradable ultrafine fibers were incorporated into the CPC in this study. Four types of fibers made of poly(epsilon-caprolactone) (PCL) (PCL12: 1.1 microm, PCL15: 1.4 microm, PCL18: 1.9 microm) and poly(l-lactic acid) (PLLA4: 1.4 microm) were prepared by electrospinning using a special water pool technique, then mixed with the CPC at fiber weight fractions of 1%, 3%, 5% and 7%. After incubation of the composites in simulated body fluid for 7 days, they were characterized by a gravimetric measurement for porosity evaluation, a three-point bending test for mechanical properties, microcomputer topography and scanning electron microscopy for morphological observation. The results indicated that the incorporation of ultrafine fibers increases the fracture resistance and porosity of CPCs. The toughness of the composites increased with the fiber fraction but was not affected by the fiber diameter. It was found that the incorporated fibers formed a channel-like porous structure in the CPCs. After degradation of the fibers, the created space and high porosity of the composite cement provides inter-connective channels for bone tissue in growth and facilitates cement resorption. Therefore, we concluded that this electrospun fiber-CPC composite may be beneficial to be used as bone fillers.
机译:固有的脆性和缓慢的降解是使用磷酸钙水泥(CPC)的主要缺点。为了解决这些问题,在这项研究中将可生物降解的超细纤维纳入了CPC。通过使用电纺丝,使用聚ε-己内酯(PCL)(PCL12:1.1微米,PCL15:1.4微米,PCL18:1.9微米)和聚(l-乳酸)(PLLA4:1.4微米)制成四种类型的纤维。一种特殊的水池技术,然后将其与CPC混合在一起,纤维重量分数分别为1%,3%,5%和7%。将复合材料在模拟体液中孵育7天后,通过重力测量进行孔隙率评估,三点弯曲测试进行力学性能表征,微机形貌和扫描电子显微镜进行形态观察。结果表明,掺入超细纤维可提高CPC的抗断裂性和孔隙率。复合材料的韧性随纤维分数的增加而增加,但不受纤维直径的影响。发现掺入的纤维在CPC中形成了通道状的多孔结构。纤维降解后,复合水泥产生的空间和高孔隙率为骨骼组织的生长提供了相互连接的通道,并促进了水泥的吸收。因此,我们得出的结论是,这种电纺纤维-CPC复合材料可用作骨填料是有益的。

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