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In vivo evaluation of the bone integration of coated poly (vinyl-alcohol) hydrogel fiber implants

机译:涂层聚乙烯醇水凝胶纤维植入物骨整合的体内评估

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摘要

Recently, it has been shown that constructs of poly(vinyl alcohol) (PVA) hydrogel fibers reproduce closely the tensile behavior of ligaments. However, the biological response to these systems has not been explored yet. Here, we report the first in vivo evaluation of these implants and focus on the integration in bone, using a rabbit model of bone tunnel healing. Implants consisted in bundles of PVA hydrogel fibers embedded in a PVA hydrogel matrix. Half of the samples were coated with a composite coating of hydroxyapatite (HA) particles embedded in PVA hydrogel. The biological integration was evaluated at 6 weeks using histology and micro-CT imaging. For all implants, a good biological tolerance and growth of new bone tissue are reported. All the implants were surrounded by a fibrous layer comparable to what was previously observed for poly (ethylene terephthalate) (PET) fibers currently used in humans for ligament reconstruction. An image analysis method is proposed to quantify the thickness of this fibrous capsule. Implants coated with HA were not significantly osteoconductive, which can be attributed to the slow dissolution of the selected hydroxyapatite. Overall, these results confirm the relevance of PVA hydrogel fibers for ligament reconstruction and adjustments are proposed to enhance its osseointegration.
机译:近来,已经显示出聚乙烯醇(PVA)水凝胶纤维的构造紧密地再现了韧带的拉伸行为。但是,尚未探索对这些系统的生物学反应。在这里,我们报告了这些植入物的首次体内评估,并使用骨隧道愈合的兔子模型着重于骨整合。植入物由包埋在PVA水凝胶基质中的PVA水凝胶纤维束组成。一半的样品涂有嵌入PVA水凝胶中的羟基磷灰石(HA)颗粒复合涂层。使用组织学和微CT成像在6周时评估生物整合。对于所有植入物,都有良好的生物学耐受性和新骨组织的生长。所有植入物都被纤维层包围,该纤维层与以前在人类韧带重建中使用的聚对苯二甲酸乙二酯(PET)纤维所观察到的相当。提出了一种图像分析方法来量化该纤维囊的厚度。涂有HA的植入物没有明显的骨传导性,这可以归因于所选羟磷灰石的缓慢溶解。总体而言,这些结果证实了PVA水凝胶纤维与韧带重建的相关性,并提出了调整措施以增强其骨整合。

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  • 来源
    《Journal of materials science》 |2017年第8期|114.1-114.11|共11页
  • 作者单位

    PSL Res Univ, MINES ParisTech, MAT Ctr Mat, CNRS UMR 7633, BP 87, F-91003 Evry, France|PSL Res Univ, ESPCI Paris, CNRS UMR 7167, Mat Molle & Chim, F-75005 Paris, France;

    PSL Res Univ, MINES ParisTech, MAT Ctr Mat, CNRS UMR 7633, BP 87, F-91003 Evry, France|Univ Denis Diderot Paris VII, Lab Bioingn & Bioimagerie Osteoarticulaire B2OA, CNRS UMR 7052, 10 Ave Verdun, F-75010 Paris, France;

    Univ Denis Diderot Paris VII, Lab Bioingn & Bioimagerie Osteoarticulaire B2OA, CNRS UMR 7052, 10 Ave Verdun, F-75010 Paris, France;

    PSL Res Univ, MINES ParisTech, MAT Ctr Mat, CNRS UMR 7633, BP 87, F-91003 Evry, France;

    Georgia Inst Technol, George W Woodruff Sch Mech Engn, Atlanta, GA 30332 USA;

    Univ Denis Diderot Paris VII, Lab Bioingn & Bioimagerie Osteoarticulaire B2OA, CNRS UMR 7052, 10 Ave Verdun, F-75010 Paris, France;

    Univ Denis Diderot Paris VII, Lab Bioingn & Bioimagerie Osteoarticulaire B2OA, CNRS UMR 7052, 10 Ave Verdun, F-75010 Paris, France;

    PSL Res Univ, MINES ParisTech, MAT Ctr Mat, CNRS UMR 7633, BP 87, F-91003 Evry, France|PSL Res Univ, ESPCI Paris, CNRS UMR 7167, Mat Molle & Chim, F-75005 Paris, France;

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