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Surface-modified nanofibrous biomaterial bridge for the enhancement and control of neurite outgrowth

机译:表面修饰的纳米纤维生物材料桥,用于增强和控制神经突向外生长

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Biomaterial bridges constructed from electrospun fibers offer a promising alternative to traditional nerve tissue regeneration substrates. Aligned and unaligned polycaprolactone (PCL) electrospun fibers were prepared and functionalized with the extracellular matrix proteins collagen and laminin using covalent and physical adsorption attachment chemistries. The effect of the protein modified and native PCL nanofiber scaffolds on cell proliferation, neurite outgrowth rate, and orientation was examined with neuronlike PC12 cells. All protein modified scaffolds showed enhanced cellular adhesion and neurite outgrowth compared to unmodified PCL scaffolds. Neurite orientation was found to be in near perfect alignment with the fiber axis for cells grown on aligned fibers, with difference angles of less than 7o from the fiber axis, regardless of the surface chemistry. The bioavailability of PCL fibers with covalently attached laminin was found to be identical to that of PCL fibers with physically adsorbed laminin, indicating that the covalent chemistry did not change the protein conformation into a less active form and the covalent attachment of protein is a suitable method for enhancing the biocompatibility of tissue engineering scaffolds. a) Electronic mail: nicole.zander@arl.army.mil
机译:由电纺纤维构成的生物材料桥为传统的神经组织再生基质提供了有希望的替代方法。制备对齐和未对齐的聚己内酯(PCL)电纺纤维,并使用共价和物理吸附附着化学方法将其与细胞外基质蛋白胶原蛋白和层粘连蛋白功能化。用神经元样PC12细胞检查了蛋白质修饰的天然PCL纳米纤维支架对细胞增殖,神经突生长速率和方向的影响。与未修饰的PCL支架相比,所有蛋白质修饰的支架均显示出增强的细胞粘附性和神经突生长。对于在排列的纤维上生长的细胞,发现神经突取向与纤维轴几乎完全对准,与纤维轴的夹角小于7o,与表面化学性质无关。发现具有共价连接的层粘连蛋白的PCL纤维的生物利用度与具有物理吸附的层粘连蛋白的PCL纤维的生物利用度相同,这表明共价化学不会将蛋白质构象改变为活性较低的形式,蛋白质的共价连接是一种合适的方法用于增强组织工程支架的生物相容性。 a)电子邮件:nicole.zander@arl.army.mil

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