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Zscan4 promotes genomic stability during reprogramming and dramatically improves the quality of iPS cells as demonstrated by tetraploid complementation

机译:Zscan4在重编程过程中可促进基因组稳定性并通过四倍体互补作用显着提高iPS细胞的质量

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摘要

Induced pluripotent stem (iPS) cells generated using Yamanaka factors have great potential for use in autologous cell therapy. However, genomic abnormalities exist in human iPS cells, and most mouse iPS cells are not fully pluripotent, as evaluated by the tetraploid complementation assay (TCA); this is most likely associated with the DNA damage response (DDR) occurred in early reprogramming induced by Yamanaka factors. In contrast, nuclear transfer can faithfully reprogram somatic cells into embryonic stem (ES) cells that satisfy the TCA. We thus hypothesized that factors involved in oocyte-induced reprogramming may stabilize the somatic genome during reprogramming, and improve the quality of the resultant iPS cells. To test this hypothesis, we screened for factors that could decrease DDR signals during iPS cell induction. We determined that Zscan4, in combination with the Yamanaka factors, not only remarkably reduced the DDR but also markedly promoted the efficiency of iPS cell generation. The inclusion of Zscan4 stabilized the genomic DNA, resulting in p53 downregulation. Furthermore, Zscan4 also enhanced telomere lengthening as early as 3 days post-infection through a telomere recombination-based mechanism. As a result, iPS cells generated with addition of Zscan4 exhibited longer telomeres than classical iPS cells. Strikingly, more than 50% of iPS cell lines (11/19) produced via this “Zscan4 protocol” gave rise to live-borne all-iPS cell mice as determined by TCA, compared to 1/12 for lines produced using the classical Yamanaka factors. Our findings provide the first demonstration that maintaining genomic stability during reprogramming promotes the generation of high quality iPS cells.
机译:使用Yamanaka因子生成的诱导多能干(iPS)细胞在自体细胞治疗中具有巨大潜力。然而,通过四倍体互补分析(TCA)评估,人iPS细胞中存在基因组异常,并且大多数小鼠iPS细胞不是完全多能的。这很可能与Yamanaka因子诱导的早期重编程中发生的DNA损伤反应(DDR)有关。相反,核移植可以将体细胞忠实地重编程为满足TCA的胚胎干(ES)细胞。因此,我们假设参与卵母细胞诱导的重编程的因素可能会在重编程期间稳定体细胞基因组,并改善所得iPS细胞的质量。为了验证该假设,我们筛选了可能在iPS细胞诱导过程中降低DDR信号的因素。我们确定Zscan4与Yamanaka因子相结合,不仅显着降低了DDR,而且显着提高了iPS细胞生成的效率。 Zscan4的纳入稳定了基因组DNA,导致p53下调。此外,Zscan4还可以通过基于端粒重组的机制在感染后3天之内增强端粒的延长。结果,与传统的iPS细胞相比,添加Zscan4生成的iPS细胞显示出更长的端粒。令人惊讶的是,通过这种“ Zscan4协议”产生的iPS细胞系(11/19)的50%产生了经TCA测定的活体全iPS细胞小鼠,相比之下,使用经典Yamanaka产生的细胞系则为1/12因素。我们的发现提供了第一个证明,即在重新编程过程中保持基因组稳定性可促进高质量iPS细胞的生成。

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