首页> 外文期刊>Tissue engineering, Part A >In vitro characterization of a stem-cell-seeded triple-interpenetrating- network hydrogel for functional regeneration of the nucleus pulposus
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In vitro characterization of a stem-cell-seeded triple-interpenetrating- network hydrogel for functional regeneration of the nucleus pulposus

机译:干细胞接种的三层互穿网络水凝胶的体外表征,用于髓核的功能性再生

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Intervertebral disc degeneration is implicated as a major cause of low-back pain. There is a pressing need for new regenerative therapies for disc degeneration that restore native tissue structure and mechanical function. To that end we investigated the therapeutic potential of an injectable, triple-interpenetrating-network hydrogel comprised of dextran, chitosan, and teleostean, for functional regeneration of the nucleus pulposus (NP) of the intervertebral disc in a series of biomechanical, cytotoxicity, and tissue engineering studies. Biomechanical properties were evaluated as a function of gelation time, with the hydrogel reaching ~90% of steady-state aggregate modulus within 10h. Hydrogel mechanical properties evaluated in confined and unconfined compression were comparable to native human NP properties. To confirm containment within the disc under physiological loading, toluidine-blue-labeled hydrogel was injected into human cadaveric spine segments after creation of a nucleotomy defect, and the segments were subjected to 10,000 cycles of loading. Gross analysis demonstrated no implant extrusion, and further, that the hydrogel interdigitated well with native NP. Constructs were next surface-seeded with NP cells and cultured for 14 days, confirming lack of hydrogel cytotoxicity, with the hydrogel maintaining NP cell viability and promoting proliferation. Next, to evaluate the potential of the hydrogel to support cell-mediated matrix production, constructs were seeded with mesenchymal stem cells (MSCs) and cultured under prochondrogenic conditions for up to 42 days. Importantly, the hydrogel maintained MSC viability and promoted proliferation, as evidenced by increasing DNA content with culture duration. MSCs differentiated along a chondrogenic lineage, evidenced by upregulation of aggrecan and collagen II mRNA, and increased GAG and collagen content, and mechanical properties with increasing culture duration. Collectively, these results establish the therapeutic potential of this novel hydrogel for functional regeneration of the NP. Future work will confirm the ability of this hydrogel to normalize the mechanical stability of cadaveric human motion segments, and advance the material toward human translation using preclinical large-animal models.
机译:椎间盘退变被认为是腰背痛的主要原因。迫切需要用于椎间盘退变的新的再生疗法,以恢复天然组织结构和机械功能。为此,我们研究了由右旋糖酐,壳聚糖和硬骨鱼胶组成的可注射,三重互穿网络水凝胶在一系列生物力学,细胞毒性和生物毒性方面对椎间盘髓核(NP)功能再生的治疗潜力。组织工程研究。评估生物力学性能与凝胶时间的关系,水凝胶在10h内达到稳态聚集模量的90%。在密闭和无密压缩条件下评估的水凝胶力学性能与天然人NP性能相当。为了确认在生理负荷下椎间盘中的封闭性,在产生核切除术缺陷后,将甲苯胺蓝标记的水凝胶注入人尸体脊柱节段中,并对这些节段进行10,000次循环加载。粗略分析表明没有植入物挤出,而且水凝胶与天然NP相互交叉良好。接下来将构建体与NP细胞一起播种,并培养14天,证实缺乏水凝胶的细胞毒性,水凝胶保持NP细胞的活力并促进增殖。接下来,为了评估水凝胶支持细胞介导的基质产生的潜力,将构建体接种间充质干细胞(MSC),并在软骨原性条件下培养长达42天。重要的是,水凝胶保持了MSC的生存能力并促进了增殖,这可通过培养持续时间增加DNA含量来证明。 MSCs沿着软骨形成谱系分化,这通过聚集蛋白聚糖和胶原IImRNA的上调证明,并且GAG和胶原含量增加,并且随着培养持续时间的增加机械性能也得到了证实。总的来说,这些结果建立了这种新型水凝胶对NP功能再生的治疗潜力。未来的工作将证实这种水凝胶能够标准化尸体人体运动段的机械稳定性,并使用临床前大动物模型将其推进人类翻译。

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