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Influence of Gelatin Cues in PCL Electrospun Membranes on Nerve Outgrowth

机译:PCL电纺膜中明胶提示对神经生长的影响

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摘要

The design of f unctionalized polymers that can elicit specific biological responses and the development of methods to fabricate new devices that incorporate biological cues are of great interest to the biomedical community. The realization of nanostructured matrices that exhibit biological properties and that comprise fibers with diameters of similar scale to those of the natural extracellular matrix (ECM) would enable the provision of tailored materials for tissue engineering. Accordingly, the goal of this work is to create a biologically active functionalized electrospun matrix capable of guiding neurite growth for the regeneration of nerve tissue. In this study, nanoscale electrospun membranes made of poly ε-caprolactone enhanced with gelatin from calf skin were investigated to validate their biological response under in vitro culture of PC-12 nerve cells. Preliminary observations from SEM studies supported by image analysis highlighted the nanoscale texture of the scaffold with fiber diameters equal to 0.548 ± 0.140 μm. In addition, contact angle measurements confirmed the hydrophilic behavior of the membranes, ascribable to the gelatin content. We demonstrate that the balance of morphological and biochemical properties improves all the fundamental biological events of nerve regeneration, enhancing cell adhesion, proliferation, and differentiation in comparison with PCL nanofibrous scaffolds, as well as supporting the neurite outgrowth.
机译:可引发特定生物学反应的功能化聚合物的设计以及制造结合了生物学线索的新装置的方法开发,对生物医学界非常感兴趣。展现出具有生物学特性并且包含直径与天然细胞外基质(ECM)的直径相似的纤维的纳米结构基质的实现将能够提供用于组织工程的定制材料。因此,这项工作的目的是创建一种生物活性的功能化电纺丝基质,该基质能够指导神经突的生长以促进神经组织的再生。在这项研究中,研究了由小牛皮肤明胶增强的聚ε-己内酯制成的纳米级电纺膜,以验证其在体外培养PC-12神经细胞下的生物学反应。 SEM研究的初步观察结果得到了图像分析的支持,突出了纤维直径等于0.548±0.140μm的支架的纳米级结构。另外,接触角测量证实了膜的亲水行为,这归因于明胶含量。我们证明,与PCL纳米纤维支架相比,形态和生化特性的平衡改善了神经再生的所有基本生物学事件,与PCL纳米纤维支架相比增强了细胞粘附,增殖和分化,并支持了神经突的生长。

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