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Development of Craniofacial Bone Defect Reconstruction Implant Based on Fibre-Reinforced Composite with Photopolymerisable Resin Systems. Experimental studies in vitro and in vivo.

机译:基于纤维增强复合材料和光聚合树脂体系的颅面骨缺损修复植入物的开发。体内外实验研究。

摘要

Reconstruction of defects in the craniomaxillofacial (CMF) area has mainly been based on bone grafts or metallic fixing plates and screws. Particularly in the case of large calvarial and/or craniofacial defects caused by trauma, tumours or congenital malformations, there is a need for reliable reconstruction biomaterials, because bone grafts or metallic fixing systems do not completely fulfill the criteria for the best possible reconstruction methods in these complicated cases. In this series of studies, the usability of fibre-reinforced composite (FRC) was studied as a biostable, nonmetallic alternative material for reconstructing artificially created bone defects in frontal and calvarial areas of rabbits.The experimental part of this work describes the different stages of the product development process from the first tests with resin-impregnated fibrereinforced composites to the animal studies, in which this FRC was tested as an implant material for reconstructing different size bone defects in rabbit frontal and calvarial areas. In the first study, the FRC was polymerised in contact with bone or blood in the laboratory. The polymerised FRC samples were then incubated in water, which was analysed for residual monomer content by using high performance liquid chromatography (HPLC). It was found that this polymerisation in contact with bone and blood did not markedly increase the residual monomer leaching from the FRC. In the second study, different adhesive systems were tested in fixing the implant to bone surface. This was done to find an alternative implant fixing system to screws and pins. On the basis of this study, it was found that the surface of the calvarial bone needed both mechanical and chemical treatments before the resinimpregnated FRC could be properly fixed onto it. In three animal studies performed with rabbit frontal bone defects and critical size calvarial bone defect models, biological responses to the FRC implants were evaluated. On the basis of theseevaluations, it can be concluded that the FRC, based on E-glass (electrical glass) fibres forming a porous fibre veil enables the ingrowth of connective tissues to the inner structures of the material, as well as the bone formation and mineralization inside the fibre veil. Bone formation could be enhanced by using bioactive glass granules fixed to the FRC implants. FRC-implanted bone defects healed partly; no total healing of defects was achieved. Biological responses during the follow-up time, at a maximum of 12 weeks, to resin-impregnated composite implant seemed to depend on the polymerization time of the resin matrix of the FRC. Both of the studied resin systems used in the FRC were photopolymerised and the heat-induced postpolymerisation was used additionally.
机译:颅颌面部(CMF)区域的缺损修复主要基于植骨或金属固定板和螺钉。特别是在外伤,肿瘤或先天性畸形导致颅骨和/或颅面大缺陷的情况下,需要可靠的重建生物材料,因为骨移植物或金属固定系统不能完全满足最佳重建方法的标准。这些复杂的情况。在这一系列研究中,对纤维增强复合材料(FRC)的可用性进行了研究,它是一种生物稳定的非金属替代材料,可用于重建兔额叶和颅盖区人工制造的骨缺损。从最初使用树脂浸渍的纤维增强复合材料进行的测试到动物研究的产品开发过程,在该动物研究中,此FRC被用作植入材料,用于重建兔额叶和颅盖区不同大小的骨缺损。在第一个研究中,FRC在实验室中与骨骼或血液接触聚合。然后将聚合的FRC样品在水中孵育,并使用高效液相色谱(HPLC)分析残留的单体含量。已经发现,这种与骨骼和血液接触的聚合并没有显着增加从FRC浸出的残留单体。在第二项研究中,测试了不同的粘合剂系统以将植入物固定在骨表面上。这样做是为了找到替代螺钉和销钉的植入物固定系统。在这项研究的基础上,发现在树脂浸渍的FRC可以正确固定到其上之前,颅骨的表面需要进行机械和化学处理。在对兔额骨缺损和临界大小颅骨缺损模型进行的三项动物研究中,评估了对FRC植入物的生物学反应。根据评估结果,可以得出结论,FRC基于形成多孔纤维面纱的E-玻璃(电玻璃)纤维,可以使结缔组织向材料的内部结构内生长,以及骨骼的形成和形成。纤维面纱内的矿化作用。通过使用固定在FRC植入物上的生物活性玻璃颗粒可以增强骨形成。 FRC植入的骨缺损部分愈合;不能完全治愈缺陷。在最长12周的随访时间内,对树脂浸渍的复合材料植入物的生物学反应似乎取决于FRC树脂基质的聚合时间。对FRC中使用的两种树脂体系进行了光聚合,另外还使用了热引发的后聚合。

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    Tuusa Sari;

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  • 年度 2007
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  • 原文格式 PDF
  • 正文语种 en
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