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Co-effects of matrix low elasticity and aligned topography on stem cell neurogenic differentiation and rapid neurite outgrowth

机译:摘要矩阵低弹性和一致的地形对干细胞神经源性分化和快速神经突的产物

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摘要

The development of novel biomaterials that deliver precise regulatory signals to direct stem cell fate for nerve regeneration is the focus of current intensive research efforts. In this study, a hierarchically aligned fibrillar fibrin hydrogel (AFG) that was fabricated through electrospinning and the concurrent molecular self-assembly process mimics both the soft and oriented features of nerve tissue, thus providing hybrid biophysical cues to instruct cell behavior in vitro and in vivo. The electrospun hydrogels were examined by scanning electron microscopy (SEM), polarized light microscopy, small angle X-ray scattering assay and atomic force microscopy (AFM), showing a hierarchically linear-ordered structure from the nanoscale to the macroscale with a soft elastic character (elasticity similar to 1 kPa). We found that this low elasticity and aligned topography of AFG exhibit co-effects on promoting the neurogenic differentiation of human umbilical cord mesenchymal stem cells (hUMSCs) in comparison to random fibrin hydrogel (RFG) and tissue culture plate (TCP) control after two week cell culture in growth medium lacking supplementation with soluble neurogenic induction factors. In addition, AFG also induces dorsal root ganglion (DRG) neurons to rapidly project numerous long neurite outgrowths longitudinally along the AFG fibers for a total neurite extension distance of 1.96 mm in three days in the absence of neurotrophic factor supplementation. Moreover, the AFG implanted in a rat T9 dorsal hemisection spinal cord injury model was found to promote endogenous neural cell fast migration and axonal invasion along AFG fibers, resulting in aligned tissue cables in vivo. Our results suggest that matrix stiffness and aligned topography may instruct stem cell neurogenic differentiation and rapid neurite outgrowth, providing great promise for biomaterial design for applications in nerve regeneration.
机译:交付的新型生物材料的发展精确的监管信号直接干细胞命运对神经再生的焦点当前的深入研究。研究中,分层次纤维纤维蛋白保持一致水凝胶(二自由度陀螺仪)这是捏造的电纺的,并发的分子自组装过程模拟和软面向功能的神经组织,从而提供混合生物物理信号指示细胞行为在体外和体内。通过扫描电子显微镜检查吗偏振光显微镜(SEM),小角x射线散射分析和原子力显微镜(AFM),显示一个等级linear-ordered从纳米结构宏观尺度的柔软弹性的性格(弹性类似1 kPa)。低弹性和对齐的二自由度陀螺仪的地形展览在促进神经源性摘要人类脐带的分化间充质干细胞(hUMSCs)相比随机纤维蛋白水凝胶(RFG)和组织文化经过两周细胞培养板(TCP)控制成长中缺少补充溶性神经性的诱导因素。二自由度陀螺仪,同样促进背根神经节(DRG)神经元迅速项目众多的长神经突沿二自由度陀螺仪纵向发展结果纤维总神经突扩展的距离三天没有1.96毫米神经营养因子的补充。二自由度陀螺仪植入老鼠T9背半切术发现促进脊髓损伤模型内源性神经细胞快速迁移和轴突沿着二自由度陀螺仪纤维入侵,导致对齐组织电缆体内。矩阵刚度和地形可能保持一致指导干细胞神经源性分化和快速神经突结果,提供了巨大的希望神经生物材料设计应用程序再生。

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