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p73 is required for appropriate BMP-induced mesenchymal-to-epithelial transition during somatic cell reprogramming

机译:在体细胞重编程过程中,适当的BMP诱导的间质向上皮转化需要p73

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摘要

The generation of induced pluripotent stem cells (iPSCs) by somatic cell reprogramming holds great potential for modeling human diseases. However, the reprogramming process remains very inefficient and a better understanding of its basic biology is required. The mesenchymal-to-epithelial transition (MET) has been recognized as a crucial step for the successful reprogramming of fibroblasts into iPSCs. It has been reported that the p53 tumor suppressor gene acts as a barrier of this process, while its homolog p63 acts as an enabling factor. In this regard, the information concerning the role of the third homolog, p73, during cell reprogramming is limited. Here, we derive total Trp73 knockout mouse embryonic fibroblasts, with or without Trp53, and examine their reprogramming capacity. We show that p73 is required for effective reprogramming by the Yamanaka factors, even in the absence of p53. Lack of p73 affects the early stages of reprogramming, impairing the MET and resulting in altered maturation and stabilization phases. Accordingly, the obtained p73-deficient iPSCs have a defective epithelial phenotype and alterations in the expression of pluripotency markers. We demonstrate that p73 deficiency impairs the MET, at least in part, by hindering BMP pathway activation. We report that p73 is a positive modulator of the BMP circuit, enhancing its activation by DNp73 repression of the Smad6 promoter. Collectively, these findings provide mechanistic insight into the MET process, proposing p73 as an enhancer of MET during cellular reprogramming.
机译:通过体细胞重编程产生诱导性多能干细胞(iPSC)具有对人类疾病建模的巨大潜力。但是,重编程过程仍然效率很低,需要对其基本生物学有更好的了解。间质到上皮的转变(MET)已被认为是成功地将成纤维细胞重编程为iPSC的关键步骤。据报道,p53肿瘤抑制基因充当该过程的屏障,而其同源物p63充当促成因子。在这方面,关于第三同源物p73在细胞重编程过程中的作用的信息是有限的。在这里,我们得出总的Trp73基因敲除小鼠胚胎成纤维细胞,有或没有Trp53,并检查其重编程能力。我们显示,即使没有p53,Yamanaka因素也需要有效地重新编程p73。 p73的缺乏会影响重编程的早期阶段,从而损害MET,并导致成熟和稳定阶段的改变。因此,获得的p73缺陷的iPSC具有缺陷的上皮表型和多能性标志物表达的改变。我们证明p73缺乏至少部分通过阻碍BMP途径激活而损害MET。我们报告p73是BMP电路的正调节剂,通过DNp73抑制Smad6启动子增强其激活。总的来说,这些发现提供了对MET过程的机械性见解,提出了p73在细胞重编程期间作为MET的增强剂。

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