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ISG15 and ISGylation is required for pancreatic cancer stem cell mitophagy and metabolic plasticity

机译:胰腺癌干细胞培养基和代谢可塑性需要ISG15和异胶质化

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Pancreatic cancer stem cells (PaCSCs) drive pancreatic cancer tumorigenesis, chemoresistance and metastasis. While eliminating this subpopulation of cells would theoretically result in tumor eradication, PaCSCs are extremely plastic and can successfully adapt to targeted therapies. In this study, we demonstrate that PaCSCs increase expression of interferon-stimulated gene 15 (ISG15) and protein ISGylation, which are essential for maintaining their metabolic plasticity. CRISPR-mediated ISG15 genomic editing reduces overall ISGylation, impairing PaCSCs self-renewal and their in vivo tumorigenic capacity. At the molecular level, ISG15 loss results in decreased mitochondrial ISGylation concomitant with increased accumulation of dysfunctional mitochondria, reduced oxidative phosphorylation (OXPHOS) and impaired mitophagy. Importantly, disruption in mitochondrial metabolism affects PaCSC metabolic plasticity, making them susceptible to prolonged inhibition with metformin in vivo. Thus, ISGylation is critical for optimal and efficient OXPHOS by ensuring the recycling of dysfunctional mitochondria, and when absent, a dysregulation in mitophagy occurs that negatively impacts PaCSC stemness.
机译:胰腺癌干细胞(PACSCs)驱动胰腺癌肿瘤瘤,化学抑制和转移。在无论是细胞亚亚群中理论上都会导致肿瘤根除,PACSCS是极其塑料,可以成功适应靶向疗法。在这项研究中,我们证明PACSCS增加干扰素刺激的基因15(ISG15)和蛋白质中的表达,这对于维持其代谢可塑性至关重要。 CRISPR介导的ISG15基因组编辑可降低整体含义,削弱PACSCs自我更新及其体内致瘤能力。在分子水平下,ISG15损失导致线粒体含量降低,伴随着功能障碍线粒体的增加,减少氧化磷酸化(汤膦)和受损的乳化物。重要的是,线粒体代谢的破坏会影响PACSC代谢可塑性,使它们易于长期抑制体内二甲双胍。因此,通过确保功能障碍线粒体的再循环,并且在不存在的情况下,发生缺乏影响的失调对PACSC茎产生负面影响的呼吸缺乏症是至关重要和有效的毒药至关重要。

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