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Immortalization of MEF is characterized by the deregulation of specific miRNAs with potential tumor suppressor activity

机译:MEF永生化的特征在于具有潜在肿瘤抑制活性的特定miRNA的失控

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摘要

The life span (Hayflick limit) of primary mouse embryo fibroblasts (MEF) in culture is variable but it is still unclear if the escape of the Hayflick limit is also variable. To address this point MEF were expanded every fifteen days (6T15) instead of every three days (6T3) until they became immortal. With this protocol MEF lifespan was extended and immortalization accordingly delayed. By testing a panel of genes (p19ARF, p16, p21) and miRNAs (miR-20a, miR-21, miR-28, miR-290) related to primary MEF senescence, a switch of p21 from up to down regulation, the down regulation of specific miRNAs as well as a massive shift from diploidy to hyperdiploidy were observed in coincidence with the resumption of cell proliferation. Collectively, these data indicate that the inactivation of genes and miRNAs, important in controlling cell proliferation, might be determinant for the escape from the Hayflick limit. In support of this hypothesis was the finding that some of the down regulated miRNAs transfected in immortalized MEF inhibited cell proliferation thus displaying a tumor suppressor-like activity.
机译:培养的原代小鼠胚胎成纤维细胞(MEF)的寿命(Hayflick极限)是可变的,但尚不清楚Hayflick极限的逃逸是否也可变。为了解决这一问题,MEF每隔15天(6T15)而不是每三天(6T3)进行扩展,直到成为永生。通过该协议,MEF的寿命得以延长,永生化相应地被延迟。通过测试与原发性MEF衰老相关的一组基因(p19ARF,p16,p21)和miRNA(miR-20a,miR-21,miR-28,miR-290),p21从上调到下调的转变在恢复细胞增殖的同时,还观察到了特定miRNA的调控以及从二倍体向超二倍体的大规模转变。总体而言,这些数据表明,对控制细胞增殖很重要的基因和miRNA的失活可能是逃避Hayflick限制的决定因素。支持该假设的发现是,在永生化的MEF中转染的一些下调的miRNA抑制细胞增殖,从而表现出类似于肿瘤抑制子的活性。

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