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首页> 外文期刊>Materials science & engineering >Impact of scaffold micro and macro architecture on Schwann cell proliferation under dynamic conditions in a rotating wall vessel bioreactor
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Impact of scaffold micro and macro architecture on Schwann cell proliferation under dynamic conditions in a rotating wall vessel bioreactor

机译:旋转壁容器生物反应器中动态条件下支架微结构和宏结构对雪旺细胞增殖的影响

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摘要

Over the last decade tissue engineering has emerged as a powerful alternative to regenerate lost tissues owing to trauma or tumor. Evidence shows that Schwann cell containing scaffolds have improved performance in vivo as compared to scaffolds that depend on cellularization post implantation. However, owing to limited supply of cells from the patients themselves, several approaches have been taken to enhance cell proliferation rates to produce complete and uniform cellularization of scaffolds. The most common approach is the application of a bioreactor to enhance cell proliferation rate and therefore reduce the time needed to obtain sufficiently significant number of glial cells, prior to implantation. In this study, we show the application of a rotating wall bioreactor system for studying Schwann cell proliferation on nanofibrous spiral shaped scaffolds, prepared by solvent casting and salt leaching techniques. The scaffolds were fabricated from polycaprolactone (PCL), which has ideal mechanical properties and upon degradation does not produce acidic byproducts. The spiral scaffolds were coated with aligned or random nanofibers, produced by electrospinning, to provide a substrate that mimics the native extracellular matrix and the essential contact guidance cues. At the 4 day time point, an enhanced rate of cell proliferation was observed on the open structured nanofibrous spiral scaffolds in a rotating wall bioreactor, as compared to static culture conditions. However, the cell proliferation rate on the other contemporary scaffolds architectures such as the tubular and cylindrical scaffolds show reduced cell proliferation in the bioreactor as compared to static conditions, at the same time point Moreover, the rotating wall bioreactor does not alter the orientation or the phenotype of the Schwann cells on the aligned nanofiber containing scaffolds, wherein, the cells remain aligned along the length of the scaffolds. Therefore, these open structured spiral scaffolds pre-cultured with Schwann cells, in bioreactors could potentially shorten the time needed for grafts for peripheral nerve regeneration.
机译:在过去的十年中,组织工程学已经成为一种强大的替代方法,可以再生由于创伤或肿瘤而丢失的组织。有证据表明,与依赖于植入后细胞化作用的支架相比,含施万细胞的支架在体内的性能有所改善。然而,由于来自患者自身的细胞供应有限,已经采取了几种方法来提高细胞增殖速率以产生支架的完全和均匀的细胞化。最常见的方法是应用生物反应器来提高细胞增殖速率,从而减少植入前获得足够数量的神经胶质细胞所需的时间。在这项研究中,我们展示了旋转壁生物反应器系统在研究通过溶剂浇铸和盐浸技术制备的纳米纤维螺旋形支架上雪旺细胞增殖的应用。支架由聚己内酯(PCL)制成,该聚己内酯具有理想的机械性能,降解后不会产生酸性副产物。螺旋支架涂有通过静电纺丝生产的对齐的或随机的纳米纤维,以提供可模仿天然细胞外基质和基本接触引导线索的底物。与静态培养条件相比,在第4天的时间点上,在旋转壁生物反应器中的开放结构纳米纤维螺旋支架上观察到了细胞增殖的提高速率。但是,在相同的时间点上,其他现代支架结构(例如管状和圆柱形支架)上的细胞增殖率与静态条件相比在生物反应器中显示出减少的细胞增殖。此外,旋转壁生物反应器不会改变方向或对齐的含纳米纤维的支架上的雪旺氏细胞表型,其中,细胞沿支架的长度方向保持对齐。因此,在生物反应器中与雪旺氏细胞预培养的这些开放结构螺旋支架可以潜在地缩短移植物用于周围神经再生的时间。

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