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A novel electrospun-aligned nanoyarn/three-dimensional porous nanofibrous hybrid scaffold for annulus fibrosus tissue engineering

机译:一种用于纤维环组织工程的新型电纺取向纳米纱/三维多孔纳米纤维混合支架

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Introduction: Herniation of the nucleus pulposus (NP) because of defects in the annulus fibrosus (AF) is a well-known cause of low back pain. Defects in the AF thus remain a surgical challenge, and efforts have been made to develop new techniques for closure and repair. In this study, we developed an electrospun aligned nanoyarn scaffold (AYS) and nanoyarn/three-dimensional porous nanofibrous hybrid scaffold (HS) for AF tissue engineering. Methods: The AYS was fabricated via conjugated electrospinning, while the aligned nanofibrous scaffold (AFS) was prepared by traditional electrospinning as a baseline scaffold. The HS was constructed by freeze-drying and cross-linking methods. Scanning electron microscopy and mechanical measurement were used to characterize the properties of these scaffolds. Bone marrow derived mesenchymal stem cells (BMSCs) were seeded on scaffolds, and cell proliferation was determined by CCK-8 assay, while cell infiltration and differentiation were assessed by histological measurement and quantitative real-time polymerase chain reaction, respectively. Results: Morphological measurements showed that AYS presented a relatively better three-dimensional structure with larger pore sizes, higher porosity, and better fibers’ alignment compared to AFS. Mechanical testing demonstrated that the tensile property of AFS and AYS was qualitatively similar to the native AF tissue, albeit to a lesser extent. When BMSCs were seeded and cultured on these scaffolds, the number of cells cultured on HS and AYS was found to be significantly higher than that on AFS and culture plate after 7?days of culture ( P 0.05). BMSCs seeded on AYS demonstrated an increased expression of COL1A1 , while the expression levels of SOX-9 , COL2A1 , and Aggrecan were higher in HS compared to other scaffolds ( P <0.05). Conclusion: These findings indicate that HS makes a proper scaffold for the AF tissue engineering as it replicates the axial compression and tensile property of AF, thereby providing a better platform for cell infiltration and cell–scaffold interaction.
机译:简介:由于纤维环(AF)缺陷而引起的髓核(NP)突出是腰背痛的众所周知原因。因此,AF中的缺陷仍然是外科手术的挑战,并且已经努力开发用于闭合和修复的新技术。在这项研究中,我们开发了用于AF组织工程的静电纺丝排列的纳米纱支架(AYS)和纳米纱/三维多孔纳米纤维混合支架(HS)。方法:通过共轭静电纺丝法制备AYS,通过传统静电纺丝法制备对齐的纳米纤维支架(AFS)作为基线支架。 HS通过冷冻干燥和交联方法构建。使用扫描电子显微镜和机械测量来表征这些支架的性质。将骨髓来源的间充质干细胞(BMSCs)接种在支架上,并通过CCK-8分析确定细胞增殖,同时通过组织学测量和定量实时聚合酶链反应评估细胞的浸润和分化。结果:形态学测量表明,与AFS相比,AYS呈现出相对更好的三维结构,具有更大的孔径,更高的孔隙率和更好的纤维排列。机械测试表明,AFS和AYS的拉伸性质在质量上与天然AF组织相似,尽管程度较小。将BMSCs接种并在这些支架上培养后,发现在培养7天后,在HS和AYS上培养的细胞数量显着高于在AFS和培养板上培养的细胞数量(P 0.05)。与其他支架相比,接种在AYS上的BMSC表现出COL1A1表达增加,而HS中SOX-9,COL2A1和Aggrecan的表达水平更高(P <0.05)。结论:这些发现表明HS可以复制AF的轴向压缩和拉伸特性,从而成为AF组织工程的合适支架,从而为细胞浸润和细胞-支架相互作用提供更好的平台。

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