Xie Chang-Qing, Huang Huarong, Wei Sheng, Song Long-Sheng, Zhang Jifeng, Ritchie Raquel P, Chen Liangbiao, Zhang Ming, Chen Y Eugene
Cardiovascular Center, Department of Internal Medicine, University of Michigan Medical Center, Ann Arbor, MI 48109, USA.
Stem Cells Dev. 2009 Jun;18(5):741-8. doi: 10.1089/scd.2008.0179.
Smooth muscle cell (SMC) differentiation and dedifferentiation play a critical role in the pathogenesis of cardiovascular diseases. The lack of a good and simple in vitro SMC differentiation system has hampered the progress of SMC field for years. The generation of such an in vitro system would be invaluable for exploring molecular mechanisms of SMC differentiation and dedifferentiation. Recently, the establishment of induced pluripotent stem (iPS) cells has offered a novel therapeutic strategy to generate patient-specific stem cell lines. Here we have investigated whether iPS cells are able to differentiate into SMCs in vitro. Mouse iPS cell (O9 and TT025) monolayers were treated with 10(-5) mol/L all-trans retinoid acid (RA). After 8 days of RA treatment, we found that >40% of the O9 iPS cells expressed the SMC-markers including SMalpha-actin and SM myosin heavy chain. Also, we documented that iPS-derived SMCs acquired SMC functional characteristics including contraction and calcium influx in response to stimuli. Moreover, our results indicated that there were differences in SMC-specific gene expression patterns between SMCs derived from O9 and TT025 iPS as well as normal embryonic stem cells. These differences might be due to disparity in the current iPS technology. Taken together, our data have established a simple iPS-SMC system to generate SMCs in vitro, which has tremendous potential to generate individualized SMCs for vascular tissue engineering and personalized drug screening.
平滑肌细胞(SMC)的分化和去分化在心血管疾病的发病机制中起着关键作用。多年来,缺乏良好且简单的体外SMC分化系统阻碍了SMC领域的进展。建立这样一种体外系统对于探索SMC分化和去分化的分子机制将具有极高的价值。最近,诱导多能干细胞(iPS)的建立为生成患者特异性干细胞系提供了一种新的治疗策略。在此,我们研究了iPS细胞是否能够在体外分化为SMC。用10(-5)mol/L全反式视黄酸(RA)处理小鼠iPS细胞(O9和TT025)单层。RA处理8天后,我们发现超过40%的O9 iPS细胞表达SMC标志物,包括平滑肌α-肌动蛋白和SM肌球蛋白重链。此外,我们记录到iPS来源的SMC获得了SMC功能特性,包括对刺激的收缩和钙内流。而且,我们的结果表明,源自O9和TT025 iPS以及正常胚胎干细胞的SMC之间在SMC特异性基因表达模式上存在差异。这些差异可能归因于当前iPS技术的差异。综上所述,我们的数据建立了一种简单的iPS-SMC系统以在体外生成SMC,这对于为血管组织工程和个性化药物筛选生成个体化SMC具有巨大潜力。