Steichen Clara, Maluenda Jérôme, Tosca Lucie, Luce Eléanor, Pineau Dominique, Dianat Noushin, Hannoun Zara, Tachdjian Gérard, Melki Judith, Dubart-Kupperschmitt Anne
INSERM U972 and Unité Mixte de Recherche (UMR) S972, Université Paris-Sud, Paul Brousse Hospital, Villejuif, France; Département Hospitalo-universitaire Hepatinov, Paul Brousse Hospital, Villejuif, France;
INSERM UMR S986, Institut Fédératif de Recherche 93, Bicêtre Hospital, Kremlin-Bicêtre, France;
Stem Cells Transl Med. 2015 Mar;4(3):224-9. doi: 10.5966/sctm.2014-0186. Epub 2015 Feb 3.
Human induced pluripotent stem cells (hiPSCs) hold great promise for cell therapy through their use as vital tools for regenerative and personalized medicine. However, the genomic integrity of hiPSCs still raises some concern and is one of the barriers limiting their use in clinical applications. Numerous articles have reported the occurrence of aneuploidies, copy number variations, or single point mutations in hiPSCs, and nonintegrative reprogramming strategies have been developed to minimize the impact of the reprogramming process on the hiPSC genome. Here, we report the characterization of an hiPSC line generated by daily transfections of modified messenger RNAs, displaying several genomic abnormalities. Karyotype analysis showed a complex genomic rearrangement, which remained stable during long-term culture. Fluorescent in situ hybridization analyses were performed on the hiPSC line showing that this karyotype is balanced. Interestingly, single-nucleotide polymorphism analysis revealed the presence of a large 1q region of uniparental disomy (UPD), demonstrating for the first time that UPD can occur in a noncompensatory context during nonintegrative reprogramming of normal fibroblasts.
人类诱导多能干细胞(hiPSC)作为再生医学和个性化医疗的重要工具,在细胞治疗方面具有巨大潜力。然而,hiPSC的基因组完整性仍引发一些担忧,这是限制其临床应用的障碍之一。许多文章报道了hiPSC中出现非整倍体、拷贝数变异或单点突变,并且已经开发出非整合重编程策略以尽量减少重编程过程对hiPSC基因组的影响。在此,我们报告了通过每日转染修饰信使核糖核酸产生的一株hiPSC系的特征,该细胞系显示出几种基因组异常。核型分析显示存在复杂的基因组重排,在长期培养过程中保持稳定。对该hiPSC系进行荧光原位杂交分析,结果表明这种核型是平衡的。有趣的是,单核苷酸多态性分析显示存在一个大片段的1号染色体单亲二体性(UPD)区域,首次证明在正常成纤维细胞的非整合重编程过程中,UPD可在非补偿情况下发生。