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首页> 外文期刊>International Journal of Nanomedicine >Enhancement of osseointegration of polyethylene terephthalate artificial ligament by coating of?silk?fibroin and depositing of hydroxyapatite
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Enhancement of osseointegration of polyethylene terephthalate artificial ligament by coating of?silk?fibroin and depositing of hydroxyapatite

机译:通过涂覆“丝素”丝素蛋白和沉积羟基磷灰石来增强聚对苯二甲酸乙二醇酯人造韧带的骨整合

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Background: Application of artificial ligament in anterior cruciate ligament reconstruction is one of the research focuses of sports medicine but the biological tendon–bone healing still remains a problem. The preliminary study of hydroxyapatite (HAP) coating on the polyethylene terephthalate (PET) surface could effectively induce the osteoblast differentiation, but the tendon–bone healing was still not stable. As a green synthesis process, the biomimetic mineralization can simulate the natural bone growth in vitro and in vivo.Methods: HAP crystals were grown under the guide of silk fibroin (SF) PET surface by biomimetic route. Several techniques including scanning electron microscopy, attenuated total reflectance Fourier transform infrared spectroscopy, X-ray diffraction, and energy-dispersive X-ray spectroscopy were utilized for proving the introduction of both SF and HAP. The viability and osseointegration of bone marrow stromal cells on the surface of three kinds of ligament, including PET group (non-coating group), PET+SF group (SF-coating group), and PET+SF+HAP group (combined HAP- and SF-coating group), were analyzed by CCK-8 assays and alkaline phosphatase (ALP) detection. Seventy-two mature male New Zealand rabbits were randomly divided into three groups. Among them, 36 rabbits were sacrificed for mechanical testing, and histological examination for the others. Results: The SF and SF+HAP were successfully coated on the surface of PET fiber. The CCK-8 assay showed that the cell proliferation on PET+SF+HAP group was better than the other two groups from 24 to 120 hours. After 14 days of culture, the cells in the PET+SF+HAP group delivered higher levels of ALP than the other two groups. After 3 days of culture, the expression level of integrin β1 in the PET+SF+HAP group and PET+SF group were higher than in the PET group. The mean load to failure and the stiffness value of the PET+SF+HAP group were both higher than the other two groups. Hematoxylin and eosin staining showed that new bone tissue formation was only found in the PET+SF+HAP group 8 weeks postoperatively. Masson staining showed that in the PET+SF+HAP group 8 weeks postoperatively, the PET fibers were almost completely encircled by collagen. Histomorphometric analysis showed that the width of the graft–bone interface in the PET+SF+HAP group was narrower than that in the other two groups 4 and 8 weeks postoperatively. The mRNA level of BMP-7 in the PET+SF+HAP groups was significantly higher than those in the other two groups 4 and 8 weeks postoperatively.Conclusion: The study showed that the combined SF and HAP coating by biomimetic route on the surface of PET artificial ligament could induce graft osseointegration in the bone tunnel, providing theoretical and experimental foundation for manufacturing novel artificial ligaments meeting the clinical needs.
机译:背景:人工韧带在前交叉韧带重建中的应用是运动医学的研究重点之一,但生物腱-骨的愈合仍然是一个问题。聚对苯二甲酸乙二醇酯(PET)表面羟基磷灰石(HAP)涂层的初步研究可以有效地诱导成骨细胞分化,但肌腱-骨的愈合仍然不稳定。仿生矿化是一种绿色的合成过程,可以模拟体内和体外的自然骨生长。方法:仿生途径在丝素蛋白(SF)PET表面的引导下生长HAP晶体。包括扫描电子显微镜,衰减全反射傅里叶变换红外光谱,X射线衍射和能量色散X射线光谱在内的几种技术被用于证明SF和HAP的引入。 PET组(非涂层组),PET + SF组(SF涂层组)和PET + SF + HAP组(HAP-联合)在3种韧带表面上的骨髓基质细胞的生存力和骨整合和SF涂层组),通过CCK-8分析和碱性磷酸酶(ALP)检测进行分析。将72只成年雄性新西兰兔随机分为三组。其中,处死36只兔子以进行机械测试,并进行其他组织学检查。结果:成功地将SF和SF + HAP涂覆在PET纤维的表面上。 CCK-8检测结果表明,PET + SF + HAP组在24〜120小时内细胞增殖能力优于其他两组。培养14天后,PET + SF + HAP组的细胞比其他两组细胞递送更高水平的ALP。培养3天后,PET + SF + HAP组和PET + SF组的整联蛋白β1的表达水平高于PET组。 PET + SF + HAP组的平均破坏负荷和刚度值均高于其他两组。苏木精和曙红染色显示,仅在术后8周的PET + SF + HAP组中发现了新的骨组织形成。 Masson染色显示,在PET + SF + HAP组术后8周,PET纤维几乎完全被胶原蛋白包围。组织形态计量学分析显示,术后4周和8周,PET + SF + HAP组的移植物-骨界面宽度较其他两组窄。术后4周和8周,PET + SF + HAP组BMP-7的mRNA水平明显高于其他2组。 PET人造韧带可诱导骨隧道内的骨结合,为制造满足临床需要的新型人造韧带提供了理论和实验基础。

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