首页> 美国卫生研究院文献>International Journal of Oncology >miR-125a induces apoptosis metabolism disorder and migration impairment in pancreatic cancer cells by targeting Mfn2-related mitochondrial fission
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miR-125a induces apoptosis metabolism disorder and migration impairment in pancreatic cancer cells by targeting Mfn2-related mitochondrial fission

机译:miR-125a通过靶向Mfn2相关的线粒体裂变诱导胰腺癌细胞凋亡代谢紊乱和迁移障碍

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摘要

Mitochondrial fission is important for the development and progression of pancreatic cancer (PC). However, little is known regarding its role in pancreatic cancer apoptosis, metabolism and migration. In the current study, the mechanism by which mitochondrial fission modifies the biological characteristics of PC was explored. MicroRNA-125a (miR-125a) had the ability to inhibit mitochondrial fission and contributed to cellular survival. Suppressed mitochondrial fission led to a reduction in mitochondrial debris, preserved the mitochondrial membrane potential, inhibited mitochondrial permeability transition pore opening, ablated cytochrome c leakage into the cytoplasm and reduced the pro-apoptotic protein contents, finally blocking mitochondria related apoptosis pathways. Furthermore, defective mitochondrial fission induced by miR-125a enhanced mitochondria-dependent energy metabolism by promoting activity of electron transport chain complexes. Furthermore, suppressed mitochondrial fission also contributed to PANC-1 cell migration by preserving the F-actin balance. Furthermore, mitofusin 2 (Mfn2), the key defender of mitochondrial fission, is involved in inhibition of miR125a-mediated mitochondrial fission. Low contents of miR-125a upregulated Mfn2 transcription and expression, leading to inactivation of mitochondrial fission. Ultimately, the current study determined that miR-125a and Mfn2 are regulated by hypoxia-inducible factor 1 (HIF1). Knockdown of HIF1 reversed miR-125a expression, and therefore, inhibited Mfn2 expression, leading to activation of mitochondrial fission. Collectively, the present study demonstrated mitochondrial fission as a tumor suppression process that is regulated by the HIF/miR-125a/Mfn2 pathways, acting to restrict PANC-1 cell survival, energy metabolism and migration, with potential implications for novel approaches for PC therapy.
机译:线粒体裂变对于胰腺癌(PC)的发展和进展很重要。然而,关于其在胰腺癌细胞凋亡,代谢和迁移中的作用鲜为人知。在当前的研究中,探索了线粒体裂变改变PC生物学特性的机制。 MicroRNA-125a(miR-125a)具有抑制线粒体裂变的能力,并有助于细胞存活。抑制的线粒体裂变导致线粒体碎片减少​​,保留了线粒体膜电位,抑制了线粒体通透性过渡孔的开放,消融了细胞色素c渗入细胞质并减少了促凋亡蛋白的含量,最终阻断了线粒体相关的凋亡途径。此外,由miR-125a诱导的缺陷线粒体裂变通过促进电子传输链复合物的活性增强了线粒体依赖性能量代谢。此外,抑制的线粒体裂变还通过保持F-肌动蛋白平衡来促进PANC-1细胞迁移。此外,线粒体分裂的关键防御者线粒体蛋白2(Mfn2)参与了miR125a介导的线粒体分裂的抑制。低含量的miR-125a上调Mfn2转录和表达,从而导致线粒体裂变失活。最终,当前研究确定miR-125a和Mfn2受缺氧诱导因子1(HIF1)调控。击倒HIF1逆转了miR-125a表达,因此抑制了Mfn2表达,从而导致线粒体裂变的激活。总体而言,本研究表明线粒体裂变是一种受HIF / miR-125a / Mfn2途径调节的肿瘤抑制过程,其作用是限制PANC-1细胞的存活,能量代谢和迁移,对PC疗法的新方法具有潜在的影响。

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