Baheiraei Nafiseh, Yeganeh Hamid, Ai Jafar, Gharibi Reza, Azami Mahmoud, Faghihi Faezeh
Department of Tissue Engineering, School of Advanced Medical Technologies, Tehran University of Medical Sciences, 1417755469 Tehran, Iran.
Department of Polyurethane, Iran Polymer and Petrochemical Institute, P.O. Box: 14965/115, Tehran, Iran.
Mater Sci Eng C Mater Biol Appl. 2014 Nov;44:24-37. doi: 10.1016/j.msec.2014.07.061. Epub 2014 Aug 4.
There has been a growing trend towards applying conducting polymers for electrically excitable cells to increase electrical signal propagation within the cell-loaded substrates. A novel biodegradable electroactive polyurethane containing aniline pentamer (AP-PU) was synthesized and fully characterized by spectroscopic methods. To tune the physico-chemical properties and biocompatibility, the AP-PU was blended with polycaprolactone (PCL). The presence of electroactive moieties and the electroactivity behavior of the prepared films were confirmed by UV-visible spectroscopy and cyclic voltammetry. A conventional four probe analysis demonstrated the electrical conductivity of the films in the semiconductor range (~10(-5)S/cm). MTT assays using L929 mouse fibroblast and human umbilical vein endothelial cells (HUVECs) showed that the prepared blend (PB) displayed more cytocompatibility compared with AP-PU due to the introduction of a biocompatible PCL moiety. The in vitro cell culture also confirmed that PB was as supportive as tissue culture plate. The antioxidant activity of the AP-PU was proved using 1,1-diphenyl-2-picrylhydrazyl (DPPH) scavenging assay by employing UV-vis spectroscopy. In vitro degradation tests conducted in phosphate-buffered saline, pH7.4 and pH5.5, proved that the films were also biodegradable. The results of this study have highlighted the potential application of this bioelectroactive polyurethane as a platform substrate to study the effect of electrical signals on cell activities and to direct desirable cell function for tissue engineering applications.
将导电聚合物应用于电可兴奋细胞以增强细胞负载基质内电信号传播的趋势日益增长。合成了一种含苯胺五聚体的新型可生物降解电活性聚氨酯(AP-PU),并通过光谱方法进行了全面表征。为了调节其物理化学性质和生物相容性,将AP-PU与聚己内酯(PCL)共混。通过紫外可见光谱和循环伏安法证实了制备薄膜中电活性部分的存在和电活性行为。传统的四探针分析表明薄膜的电导率在半导体范围内(~10(-5)S/cm)。使用L929小鼠成纤维细胞和人脐静脉内皮细胞(HUVECs)进行的MTT分析表明,由于引入了生物相容性PCL部分,制备的共混物(PB)与AP-PU相比表现出更高的细胞相容性。体外细胞培养也证实PB与组织培养板一样具有支持性。通过紫外可见光谱采用1,1-二苯基-2-苦基肼基(DPPH)清除试验证明了AP-PU的抗氧化活性。在pH7.4和pH5.5的磷酸盐缓冲盐水中进行的体外降解试验证明薄膜也是可生物降解的。本研究结果突出了这种生物电活性聚氨酯作为平台基质在研究电信号对细胞活动的影响以及指导组织工程应用中理想细胞功能方面的潜在应用。