Grzesiak Jakub, Marycz Krzysztof, Szarek Dariusz, Bednarz Paulina, Laska Jadwiga
Electron Microscopy Laboratory, University of Environmental and Life Sciences, Kozuchowska 5b, 51-631 Wroclaw, Poland.
Electron Microscopy Laboratory, University of Environmental and Life Sciences, Kozuchowska 5b, 51-631 Wroclaw, Poland.
Mater Sci Eng C Mater Biol Appl. 2015;52:163-70. doi: 10.1016/j.msec.2015.03.050. Epub 2015 Mar 25.
Research concerning the elaboration and application of biomaterial which may support the nerve tissue regeneration is currently one of the most promising directions. Biocompatible polymer devices are noteworthy group among the numerous types of potentially attractive biomaterials for regenerative medicine application. Polylactides and polyurethanes may be utilized for developing devices for supporting the nerve regeneration, like nerve guide conduits or bridges connecting the endings of broken nerve tracts. Moreover, the combination of these biomaterial devices with regenerative cell populations, like stem or precursor cells should significantly improve the final therapeutic effect. Therefore, the composition and structure of final device should support the proper adhesion and growth of cells destined for clinical application. In current research, the three polymer mats elaborated for connecting the broken nerve tracts, made from polylactide, polyurethane and their blend were evaluated both for physical properties and in vitro, using the olfactory-bulb glial cells and mesenchymal stem cells. The evaluation of Young's modulus, wettability and roughness of obtained materials showed the differences between analyzed samples. The analysis of cell adhesion, proliferation and morphology showed that the polyurethane-polylactide blend was the most neutral for cells in culture, while in the pure polymer samples there were significant alterations observed. Our results indicated that polyurethane-polylactide blend is an optimal composition for culturing and delivery of glial and mesenchymal stem cells.
有关可能支持神经组织再生的生物材料的研发与应用的研究,目前是最具前景的方向之一。在众多类型的、对再生医学应用具有潜在吸引力的生物材料中,生物相容性聚合物装置是值得关注的一类。聚乳酸和聚氨酯可用于开发支持神经再生的装置,如神经导管或连接断裂神经束末端的桥接物。此外,这些生物材料装置与再生细胞群体(如干细胞或前体细胞)的结合,应能显著提高最终的治疗效果。因此,最终装置的组成和结构应支持临床应用中目标细胞的适当黏附和生长。在当前研究中,对由聚乳酸、聚氨酯及其混合物制成的、用于连接断裂神经束的三种聚合物垫进行了物理性能评估,并利用嗅球神经胶质细胞和间充质干细胞进行了体外评估。对所得材料的杨氏模量、润湿性和粗糙度的评估显示了分析样品之间的差异。细胞黏附、增殖和形态分析表明,聚氨酯 - 聚乳酸混合物对培养中的细胞最为中性,而在纯聚合物样品中观察到了显著变化。我们的结果表明,聚氨酯 - 聚乳酸混合物是培养和递送神经胶质细胞和间充质干细胞的最佳组合物。