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Engineered disc-like angle-ply structures for intervertebral disc replacement.

机译:工程化的椎间盘状角膜层结构,用于椎间盘置换。

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STUDY DESIGN: To develop a construction algorithm in which electrospun nanofibrous scaffolds are coupled with a biocompatible hydrogel to engineer a mesenchymal stem cell (MSC)-based disc replacement. OBJECTIVE: To engineer a disc-like angle-ply structure (DAPS) that replicates the multiscale architecture of the intervertebral disc. SUMMARY OF BACKGROUND DATA: Successful engineering of a replacement for the intervertebral disc requires replication of its mechanical function and anatomic form. Despite many attempts to engineer a replacement for ailing and degenerated discs, no prior study has replicated the multiscale hierarchical architecture of the native disc, and very few have assessed the mechanical function of formed neo-tissues. METHODS: A new algorithm for the construction of a disc analogue was developed, using agarose to form a central nucleus pulposus (NP) and oriented electrospun nanofibrous scaffolds to form the anulus fibrosus region (AF). Bovine MSCs were seeded into both regions and biochemical, histologic, and mechanical maturation were evaluated with in vitro culture. RESULTS: We show that mechanical testing in compression and torsion, loading methods commonly used to assess disc mechanics, reveal equilibrium and time-dependent behaviors that are qualitatively similar to native tissue, although lesser in magnitude. Further, we demonstrate that cells seeded into both AF and NP regions adopt distinct morphologies that mirror those seen in native tissue, and that, in the AF region, this ordered community of cells deposit matrix that is organized in an angle-ply configuration. Finally, constructs demonstrate functional development with long-term in vitro culture. CONCLUSION: These findings provide a new approach for disc tissue engineering that replicates multi-scale form and function of the intervertebral disc, providing a foundation from which to build a multi-scale, biologic, anatomically and hierarchically relevant composite disc analogue for eventual disc replacement.
机译:研究设计:开发一种构建算法,在该算法中,将电纺纳米纤维支架与生物相容性水凝胶结合,以设计基于间充质干细胞(MSC)的椎间盘置换术。目的:设计一种可复制椎间盘多尺度结构的盘状角片层结构(DAPS)。背景技术概述:椎间盘置换术的成功工程需要复制其机械功能和解剖形式。尽管进行了许多尝试来设计用于替换变坏和退化的椎间盘的尝试,但是之前的研究都没有复制天然椎间盘的多尺度层次结构,并且很少有人评估形成的新组织的机械功能。方法:开发了一种新的构建椎间盘类似物的算法,使用琼脂糖形成髓核中央(NP),并定向电纺纳米纤维支架形成纤维环(AF)。将牛MSCs接种到两个区域中,并通过体外培养评估生化,组织学和机械成熟。结果:我们显示出压缩和扭转的机械测试,通常用于评估椎间盘力学的加载方法,揭示了与定性组织相似的平衡和时间依赖性行为,尽管幅度较小。此外,我们证明了植入AF和NP区域的细胞都采用了与天然组织中可见的形态相似的形态,并且在AF区域中,这种有序的细胞群落以矩阵状排列的形式沉积了基质。最后,构建体证明了长期体外培养的功能发展。结论:这些发现为椎间盘组织工程提供了一种新方法,该方法可复制椎间盘的多尺度形式和功能,为构建最终用于椎间盘置换的多尺度,生物学,解剖学和层次结构相关的复合椎间盘类似物提供基础。 。

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