School of Life Science and Engineering, Southwest Jiaotong University, Chengdu 610031, Sichuan, PR China.
Biomaterials. 2011 Apr;32(11):2821-33. doi: 10.1016/j.biomaterials.2011.01.051. Epub 2011 Feb 2.
The electrospinning process was utilized successfully to fabricate the random oriented and aligned electrically conductive nanofibers of biodegradable poly-DL-lactide (PLA) in which multiwalled carbon nanotubes (MWCNTs) were embedded. The topographical features of the composite nanofibers were characterized by SEM. The dispersion and alignment of MWCNTs in nanofiber matrix were observed by TEM. The in vitro degradation was characterized in terms of the morphological change, the mass loss and the reduction of polymer molecular weight as well as the decrease of pH value of degradation media. In particular, these conductive nanofiber meshes offered a unique system to study the synergistic effect of topographic cues and electrical stimulation on osteoblasts outgrowth as a way of exploring their potential application in bone tissue engineering. The results of obsteoblasts assay unstimulated showed that the aligned nanofibers as topographic cues could enhance the extension and direct the outgrowth of obsteoblasts better than random fibers. In the presence of direct current (DC) of 100 μA, the obsteoblasts on all samples grew along the electrical current direction. The cellular elongation and proliferation were mainly dependent on the electrical stimulation whereas the topographical features played a minor role in them. Therefore, electrical stimulation with an appropriate DC value imparted on conductive substrate had great potential in application of bone tissue engineering.
静电纺丝工艺成功地制备了随机取向和定向的可生物降解聚-DL-乳酸(PLA)导电纳米纤维,其中嵌入了多壁碳纳米管(MWCNTs)。通过 SEM 对复合纳米纤维的形貌特征进行了表征。通过 TEM 观察了 MWCNTs 在纳米纤维基体中的分散和取向。通过形态变化、质量损失和聚合物分子量的降低以及降解介质 pH 值的降低来表征体外降解。特别是,这些导电纳米纤维网提供了一个独特的系统来研究形貌线索和电刺激对成骨细胞生长的协同作用,以此探索它们在骨组织工程中的潜在应用。未经刺激的成骨细胞检测结果表明,作为形貌线索的定向纳米纤维比随机纤维更能增强成骨细胞的延伸和定向生长。在 100μA 的直流(DC)存在下,所有样品上的成骨细胞都沿着电流方向生长。细胞的伸长和增殖主要依赖于电刺激,而形貌特征的作用较小。因此,施加适当 DC 值的电刺激对导电基底在骨组织工程应用中具有很大的潜力。