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线粒体动力学改变调控黑色素瘤细胞进展。

Mitochondrial dynamic alterations regulate melanoma cell progression.

作者信息

Dal Yontem Fulya, Kim Sun-Hee, Ding Zhen, Grimm Elizabeth, Ekmekcioglu Suhendan, Akcakaya Handan

机构信息

Department of Biophysics, Istanbul University, Istanbul Medical Faculty, Istanbul, Turkey.

Department of Melanoma Medical Oncology, The University of Texas MD Anderson Cancer Center, Houston, Texas.

出版信息

J Cell Biochem. 2019 Feb;120(2):2098-2108. doi: 10.1002/jcb.27518. Epub 2018 Sep 6.

Abstract

Research on mitochondrial fusion and fission (mitochondrial dynamics) has gained much attention in recent years, as it is important for understanding many biological processes, including the maintenance of mitochondrial functions, apoptosis, and cancer. The rate of mitochondrial biosynthesis and degradation can affect various aspects of tumor progression. However, the role of mitochondrial dynamics in melanoma progression remains controversial and requires a mechanistic understanding to target the altered metabolism of cancer cells. Therefore, in our study, we disrupted mitochondrial fission with mdivi-1, the reported inhibitor of dynamin related protein 1 (Drp1), and knocked down Drp1 and Mfn2 to evaluate the effects of mitochondrial dynamic alterations on melanoma cell progression. Our confocal study results showed that mitochondrial fission was inhibited both in mdivi-1 and in Drp1 knockdown cells and, in parallel, mitochondrial fusion was induced. We also found that mitochondrial fission inhibition by mdivi-1 induced cell death in melanoma cells. However, silencing Drp1 and Mfn2 did not affect cell viability, but enhanced melanoma cell migration. We further show that dysregulated mitochondrial fusion by Mfn2 knockdowns suppressed the oxygen consumption rate of melanoma cells. Together, our findings suggest that mitochondrial dynamic alterations regulate melanoma cell migration and progression.

摘要

近年来,关于线粒体融合与分裂(线粒体动力学)的研究备受关注,因为它对于理解许多生物学过程至关重要,包括线粒体功能的维持、细胞凋亡和癌症。线粒体生物合成和降解的速率会影响肿瘤进展的各个方面。然而,线粒体动力学在黑色素瘤进展中的作用仍存在争议,需要从机制上加以理解,以便针对癌细胞代谢改变进行靶向治疗。因此,在我们的研究中,我们使用mdivi-1(一种已报道的动力蛋白相关蛋白1(Drp1)抑制剂)破坏线粒体分裂,并敲低Drp1和Mfn2,以评估线粒体动态改变对黑色素瘤细胞进展的影响。我们的共聚焦研究结果表明,mdivi-1处理的细胞和Drp1敲低的细胞中线粒体分裂均受到抑制,同时线粒体融合被诱导。我们还发现,mdivi-1抑制线粒体分裂会诱导黑色素瘤细胞死亡。然而,敲低Drp1和Mfn2并不影响细胞活力,但会增强黑色素瘤细胞的迁移能力。我们进一步表明,敲低Mfn2导致的线粒体融合失调会抑制黑色素瘤细胞的耗氧率。总之,我们的研究结果表明,线粒体动态改变调节黑色素瘤细胞的迁移和进展。

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