Jin GyuHyun, Kim GeunHyung
Department of Mechanical Eng., College of Engineering, Chosun University, Gwangju, South Korea.
J Mater Chem B. 2013 Mar 14;1(10):1439-1452. doi: 10.1039/c2tb00338d. Epub 2013 Jan 25.
Various physical stimulations have been widely applied to tissue regenerative applications. In particular, for bone tissue regeneration, several experimental studies have reported that electric stimulation can enhance the mineral formation in cultured osteoblasts and even alter the pattern of gene expression, promoting bone tissue formation. However, to date, for rapid-prototyped polycaprolactone (PCL)-based composites of pure PCL and dispersed materials including carbon nanotubes and β-tricalcium phosphate (TCP), the effect of electric stimulation on various cellular activities has not been analyzed. Here, a sinusoidal AC electric field (55 ± 8 mV cm and 60 Hz) between parallel electrodes was applied to three-dimensional scaffolds (pure PCL, PCL/CNT-0.2 wt%, and PCL/β-TCP-20 wt%) cultured with osteoblast-like cells (MG63) 30 min per day for 14 days. When exposed to electric stimulation, alkaline phosphatase and calcium mineralization were enhanced in all scaffolds, and the PCL/β-TCP scaffold in particular showed the highest improvement in bone mineralization compared with other scaffolds. In this work, we surmised that the improvement may have been due to chemical precipitation of the calcium ions from the PCL/β-TCP scaffolds. To evaluate the effect of the released calcium ions from the composite scaffold, we observed the cellular behavior (cellular contraction) of proliferated cells under electric stimulation. The results indicate that in addition to the applied electric field conditions, the scaffold materials are also an important parameter for successful electric stimulation.
各种物理刺激已广泛应用于组织再生领域。特别是在骨组织再生方面,多项实验研究报告称,电刺激可增强培养的成骨细胞中的矿物质形成,甚至改变基因表达模式,促进骨组织形成。然而,迄今为止,对于基于快速成型聚己内酯(PCL)的纯PCL与包括碳纳米管和β - 磷酸三钙(TCP)在内的分散材料的复合材料,电刺激对各种细胞活动的影响尚未得到分析。在此,将平行电极之间的正弦交流电场(55±8 mV/cm和60 Hz)施加到与成骨样细胞(MG63)一起培养的三维支架(纯PCL、PCL/CNT - 0.2 wt%和PCL/β - TCP - 20 wt%)上,每天施加30分钟,持续14天。当受到电刺激时,所有支架中的碱性磷酸酶和钙矿化都得到增强,特别是PCL/β - TCP支架与其他支架相比,在骨矿化方面表现出最高的改善。在这项工作中,我们推测这种改善可能是由于PCL/β - TCP支架中钙离子的化学沉淀所致。为了评估复合支架释放的钙离子的作用,我们观察了电刺激下增殖细胞的细胞行为(细胞收缩)。结果表明,除了施加的电场条件外,支架材料也是成功进行电刺激的一个重要参数。