具有定向微槽和较低硬度的甘油混合壳聚糖膜可改善许旺细胞伤口愈合。

L Scaccini, A Battisti, D Convertino, D Puppi, M Gagliardi, M Cecchini, I Tonazzini
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引用次数: 0

摘要

再生医学一直在寻找新的天然生物相容性材料,这些材料可能具有生物降解性,但也具有机械顺应性。壳聚糖是一种经美国食品药物管理局(FDA)批准的用于组织工程的前景广阔的生物聚合物,但它在再生设备中的应用因其脆性而受到限制,可以通过与其他材料混合或调整其表面微结构等方法进一步改进。这些膜通过光学显微镜和原子力显微镜(AFM)、热学、机械和降解试验进行了表征,并作为许旺细胞的支架进行了体外测试。甘油混合壳聚糖膜在机械性能方面进行了优化,具有生理级杨氏模量(≈ 0.7 兆帕)。定向拓扑结构能有效引导细胞极化和迁移,尤其是对细胞的集体迁移而言,它是一种性能优异的基底。
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Glycerol-blended chitosan membranes with directional micro-grooves and reduced stiffness improve Schwann cell wound healing.

Regenerative medicine is continuously looking for new natural, biocompatible and possibly biodegradable materials, but also mechanically compliant. Chitosan is emerging as a promising FDA-approved biopolymer for tissue engineering, however, its exploitation in regenerative devices is limited by its brittleness and can be further improved, for example by blending it with other materials or by tuning its superficial microstructure. Here, we developed membranes made of chitosan (Chi) and glycerol, by solvent casting, and micro-patterned them with directional geometries having different levels of axial symmetry. These membranes were characterized by light microscopies, atomic force microscopy (AFM), by thermal, mechanical and degradation assays, and also testedin vitroas scaffolds with Schwann cells (SCs). The glycerol-blended Chi membranes are optimized in terms of mechanical properties, and present a physiological-grade Young's modulus (≈0.7 MPa). The directional topographies are effective in directing cell polarization and migration and in particular are highly performant substrates for collective cell migration. Here, we demonstrate that a combination of a soft compliant biomaterial and a topographical micropatterning can improve the integration of these scaffolds with SCs, a fundamental step in the peripheral nerve regeneration process.

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