生物
转基因
基因沉默
诱导多能干细胞
病毒载体
水泡性口炎病毒
RNA干扰
发起人
遗传增强
表观遗传学
载体(分子生物学)
分子生物学
细胞生物学
基因
遗传学
基因表达
病毒
胚胎干细胞
核糖核酸
重组DNA
作者
Dirk Hoffmann,Juliane W. Schott,Franziska K. Geis,Lucas Lange,Franz‐Josef Müller,Dominic Lenz,Daniela Zychlinski,Doris Steinemann,Michael Morgan,Thomas Möritz,Axel Schambach
出处
期刊:Gene Therapy
[Springer Nature]
日期:2017-04-20
卷期号:24 (5): 298-307
被引量:37
摘要
Correction of patient-specific induced pluripotent stem cells (iPSC) upon gene delivery through retroviral vectors offers new treatment perspectives for monogenetic diseases. Gene-modified iPSC clones can be screened for safe integration sites and differentiated into transplantable cells of interest. However, the current bottleneck is epigenetic vector silencing. In order to identify the most suitable retroviral expression system in iPSC, we systematically compared vectors from different retroviral genera, different promoters and their combination with ubiquitous chromatin opening elements (UCOE), and several envelope pseudotypes. Lentiviral vectors (LV) pseudotyped with vesicular stomatitis virus glycoprotein were superior to gammaretroviral and alpharetroviral vectors and other envelopes tested. The elongation factor 1α short (EFS) promoter mediated the most robust expression, whereas expression levels were lower from the potent but more silencing-prone spleen focus forming virus (SFFV) promoter. Both full-length (A2UCOE) and minimal (CBX3) UCOE juxtaposed to two physiological and one viral promoter reduced transgene silencing with equal efficiency. However, a promoter-specific decline in expression levels was not entirely prevented. Upon differentiation of transgene-positive iPSC into endothelial cells, A2UCOE.EFS and CBX3.EFS vectors maintained highest transgene expression in a larger fraction of cells as compared with all other constructs tested here. The function of UCOE diminished, but did not fully counteract, vector silencing and possibilities for improvements remain. Nevertheless, the CBX3.EFS in a LV background exhibited the most promising promoter and vector configuration for both high titer production and long-term genetic modification of human iPSC and their progeny.
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