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Autophagy-mediated apoptosis eliminates aneuploid cells in a mouse model of chromosome mosaicism

机译:自噬介导的细胞凋亡消除了染色体染色体染色体模型中的一种非植物细胞

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摘要

The high incidence of aneuploidy in the embryo is considered the principal cause for low human fecundity. However, the prevalence of aneuploidy dramatically declines as pregnancy progresses, with the steepest drop occurring as the embryo completes implantation. Despite the fact that the plasticity of the embryo in dealing with aneuploidy is fundamental to normal development, the mechanisms responsible for eliminating aneuploid cells are unclear. Here, using a mouse model of chromosome mosaicism, we show that aneuploid cells are preferentially eliminated from the embryonic lineage in a p53-dependent process involving both autophagy and apoptosis before, during and after implantation. Moreover, we show that diploid cells in mosaic embryos undertake compensatory proliferation during the implantation stages to confer embryonic viability. Together, our results indicate a close link between aneuploidy, autophagy, and apoptosis to refine the embryonic cell population and ensure only chromosomally fit cells proceed through development of the fetus.
机译:胚胎中的短倍性发病率被认为是低人类繁殖力的主要原因。然而,随着妊娠的进展,随着妊娠的进展,儿童倍差的患病率随着胚胎完成植入而发生截至最陡峭的下降。尽管胚胎在处理非倍性的胚胎的可塑性是正常发展的基础上,但负责消除非植物细胞的机制尚不清楚。这里,使用染色体镶嵌主义的小鼠模型,我们表明,在涉及植入前,期间和植入后的胚胎依赖性过程中,优先从胚胎谱系中消除一种胚胎血管细胞。此外,我们表明马赛克胚胎中的二倍体细胞在植入阶段进行补偿增殖,以赋予胚胎活力。我们的结果在一起表明了一种细胞倍性,自噬和凋亡之间的密切联系,以优化胚胎细胞群,并确保仅通过胎儿的发育进行染色体拟合细胞。

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