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Mitochondrial fusion by pharmacological manipulation impedes somatic cell reprogramming to pluripotency: New insight into the role of mitophagy in cell stemness

机译:通过药理学操纵的线粒体融合阻止体细胞重编程为多能性:线粒体在细胞干性中的作用的新见解

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摘要

Recent studies have suggested a pivotal role for autophagy in stem cell maintenance and differentiation. Reprogramming of somatic cells to induced pluripotent stem cells (iPSCs) has been also suggested to bio-energetically take advantage of mitochondrial autophagy (mitophagy). We have preliminary addressed how mitophagy might play a role in the regulation of induced pluripotency using mdivi-1 (for mitochondrial division inhibitor), a highly efficacious small molecule that selectively inhibits the self-assembly of DRP1, a member of the dynamin family of large GTPases that mediates mitochondrial fission. At mdivi-1 concentrations that rapidly induced the formation of mitochondrial net-like or collapsed perinuclear mitochondrial structures, we observed that the reprogramming efficiency of mouse embryonic fibroblasts transduced with the Yamanaka three-factor cocktail (OCT4, KLF4, and SOX2) is drastically reduced by more than 95%. Treatment of MEFs with mdivi-1 at the early stages of reprogramming before the appearance of iPSC colonies was sufficient to completely inhibit somatic cell reprogramming. Therefore, the observed effects on reprogramming efficiencies were due likely to the inhibition of the process of reprogramming itself and not to an impairment of iPSC colony survival or growth. Moreover, the typical morphology of established iPSC colonies with positive alkaline phosphatase staining was negatively affected by mdivi-1 exposure. In the presence of mdivi-1, the colony morphology of the iPSCs was lost, and they somewhat resembled fibroblasts. The alkaline phosphatase staining was also significantly reduced, a finding that is indicative of differentiation. Our current findings provide new insight into how mitochondrial division is integrated into the reprogramming factors-driven transcriptional network that specifies the unique pluripotency of stem cells.
机译:最近的研究表明自噬在干细胞维持和分化中起关键作用。还建议将体细胞重编程为诱导性多能干细胞(iPSC),以生物能源地利用线粒体自噬(mitophagy)。我们已经初步探讨了线粒体在使用mdivi-1(线粒体分裂抑制剂)来诱导多能性的调节中如何发挥作用,mdivi-1是一种高效的小分子,可选择性抑制DRP1的自组装,DRP1是大分子动力家族的成员。介导线粒体裂变的GTPases。在迅速诱导线粒体网状或塌陷的核线粒体结构形成的mdivi-1浓度下,我们观察到用Yamanaka三因子鸡尾酒(OCT4,KLF4和SOX2)转导的小鼠胚胎成纤维细胞的重编程效率大大降低。超过95%。在iPSC集落出现之前,在重编程的早期用mdivi-1处理MEF足以完全抑制体细胞重编程。因此,观察到的对重编程效率的影响可能是由于抑制了重编程本身的过程,而不是因为iPSC集落存活或生长受到损害。此外,mdivi-1暴露会对建立的具有阳性碱性磷酸酶染色的iPSC集落的典型形态产生负面影响。在存在mdivi-1的情况下,iPSC的菌落形态消失了,它们有点类似于成纤维细胞。碱性磷酸酶染色也显着降低,这一发现指示分化。我们目前的发现为线粒体分裂如何整合到重编程因子驱动的转录网络中提供了新的见解,该网络指定了干细胞的独特多能性。

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