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Comparative evaluation of Chitosan Cellulose Acetate and Polyethersulfone Nanofiber Scaffolds for Neural Differentiation

机译:壳聚糖醋酸纤维素和聚醚砜纳米纤维支架对神经分化的比较评价。

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摘要

Based on accumulating evidence that the 3D topography and the chemical features of a growth surface influence neuronal differentiation, we combined these two features by evaluating the cytotoxicity, proliferation, and differentiation of the rat PC12 line and human neural stem cells (hNSCs) on chitosan (CS), cellulose acetate (CA), and polyethersulfone (PES)-derived electrospun nanofibers that had similar diameters, centered in the 200 to 500 nm range. None of the nanofibrous materials were cytotoxic compared to 2D (e.g., flat surface) controls; however, proliferation generally was inhibited on the nanofibrous scaffolds although to a lesser extent on the polysaccharide-derived materials compared to PES. In an exception to the trend towards slower growth on the 3D substrates, hNSCs differentiated on the CS nanofibers proliferated faster than the 2D controls and both cell types showed enhanced indication of neuronal differentiation on the CS scaffolds. Together, these results demonstrate beneficial attributes of CS for neural tissue engineering when this polysaccharide is used in the context of the defined 3D topography found in electrospun nanofibers.
机译:基于越来越多的证据表明3D地形和生长表面的化学特征影响神经元分化,我们通过评估大鼠PC12系和人类神经干细胞(hNSCs)对壳聚糖的细胞毒性,增殖和分化,将这两个特征结合在一起( CS),醋酸纤维素(CA)和聚醚砜(PES)衍生的电纺纳米纤维,其直径相似,位于200至500 nm范围内。与2D(例如,平坦表面)对照相比,没有纳米纤维材料具有细胞毒性。然而,与PES相比,虽然在源自多糖的材料上程度较小,但是通常在纳米纤维支架上抑制了增殖。除了在3D基质上生长变慢的趋势外,在CS纳米纤维上分化的hNSC的增殖速度快于2D对照,并且两种细胞类型均显示出CS支架上神经元分化的增强指示。在一起,这些结果表明,当在电纺纳米纤维中发现的3D拓扑结构中使用这种多糖时,CS对于神经组织工程的有益属性。

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