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Nanofibers Support Oligodendrocyte Precursor Cell Growth and Function as a Neuron-Free Model for Myelination Study

机译:纳米纤维支持少突胶质前体细胞的生长和功能作为无髓鞘的神经元模型的研究。

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摘要

Nanofiber-based scaffolds may simultaneously provide immediate contact guidance for neural regeneration and act as a vehicle for therapeutic cell delivery to enhance axonal myelination. Additionally, nanofibers can serve as a neuron-free model to study myelination of oligodendrocytes. In this study, we fabricated nanofibers using a polycaprolactone and gelatin co-polymer. The ratio of the gelatin component in the fibers was confirmed by energy dispersive x-ray spectroscopy. The addition of gelatin to the polycaprolactone (PCL) for nanofiber fabrication decreased the contact angle of the electrospun fibers. We showed that both polycaprolactone nanofibers as well as polycaprolactone and gelatin co-polymer nanofibers can support oligodendrocyte precursor cell (OPC) growth and differentiation. OPCs maintained their phenotype and viability on nanofibers and were induced to differentiate into oligodendrocytes. The differentiated oligodendrocytes extend their processes along the nanofibers and ensheathed the nanofibers. Oligodendrocytes formed significantly more myelinated segments on the PCL and gelatin co3polymer nanofibers than those on PCL nanofibers alone.
机译:基于纳米纤维的支架可同时提供神经再生的即时接触指导,并充当治疗性细胞递送的载体,以增强轴突的髓鞘形成。此外,纳米纤维可以作为无神经元模型来研究少突胶质细胞的髓鞘形成。在这项研究中,我们使用聚己内酯和明胶共聚物制造了纳米纤维。通过能量色散X射线光谱法确认了纤维中明胶成分的比例。向用于纳米纤维制造的聚己内酯(PCL)中添加明胶可降低电纺纤维的接触角。我们表明聚己内酯纳米纤维以及聚己内酯和明胶共聚物纳米纤维都可以支持少突胶质前体细胞(OPC)的生长和分化。 OPC在纳米纤维上保持其表型和活力,并被诱导分化为少突胶质细胞。分化的少突胶质细胞沿纳米纤维延伸其过程并包封纳米纤维。与单独的PCL纳米纤维相比,少突胶质细胞在PCL和明胶共聚纳米纤维上形成的髓鞘段明显更多。

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