Sala Martina Rodriguez, Skalli Omar, Leventis Nicholas, Sabri Firouzeh
Department of Physics and Materials Science, University of Memphis, Memphis, TN 38152, USA.
Department of Biological Science, University of Memphis, Memphis, TN 38152, USA.
Polymers (Basel). 2020 Dec 15;12(12):2995. doi: 10.3390/polym12122995.
We have previously shown the suitability of aerogels as scaffolds for neuronal cells. Here, we report on the use of superelastic shape memory polyurethane aerogels (SSMPA). SSMPA have a distinctly different stiffness than previously reported aerogels. The soft and deformable nature of SSMPA allowed for radial compression of the aerogel induced by a custom designed apparatus. This radial compression changed the pore diameter and surface roughness (Sa) of SSMPA, while maintaining similar stiffness. Two varieties of SSMPA were used, Mix-14 and Mix-18, with distinctly different pore diameters and Sa. Radial compression led to a decreased pore diameter, which, in turn, decreased the Sa. The use of custom designed apparatus and two types of SSMPA allowed us to examine the influence of stiffness, pore size, and Sa on the extension of processes (neurites) by PC12 neuronal cells. PC12 cells plated on SSMPA with a higher degree of radial compression extended fewer neurites per cell when compared to other groups. However, the average length of the neurites was significantly longer when compared to the unrestricted group and to those extended by cells plated on SSMPA with less radial compression. These results demonstrate that SSMPA with 1.9 µm pore diameter, 1.17 µm Sa, and 203 kPa stiffness provides the optimum combination of physical parameters for nerve regeneration.
我们之前已经证明气凝胶适合作为神经元细胞的支架。在此,我们报告超弹性形状记忆聚氨酯气凝胶(SSMPA)的应用。SSMPA的刚度与先前报道的气凝胶明显不同。SSMPA柔软且可变形的特性使得通过定制设计的装置能够对气凝胶进行径向压缩。这种径向压缩改变了SSMPA的孔径和表面粗糙度(Sa),同时保持了相似的刚度。使用了两种不同的SSMPA,即Mix - 14和Mix - 18,它们的孔径和Sa明显不同。径向压缩导致孔径减小,进而使Sa降低。定制设计的装置和两种类型的SSMPA使我们能够研究刚度、孔径和Sa对PC12神经元细胞突起(神经突)延伸的影响。与其他组相比,接种在径向压缩程度较高的SSMPA上的PC12细胞每个细胞延伸出的神经突较少。然而,与未受限制的组以及接种在径向压缩程度较小的SSMPA上的细胞延伸出的神经突相比,神经突的平均长度明显更长。这些结果表明,孔径为1.9 µm、Sa为1.17 µm且刚度为203 kPa的SSMPA为神经再生提供了物理参数的最佳组合。