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靶向 TASK-3 双孔钾通道的线粒体抑制剂的合成及细胞效应。

Synthesis and cellular effects of a mitochondria-targeted inhibitor of the two-pore potassium channel TASK-3.

机构信息

Department of Biology, University of Padua, Italy.

Department of Chemical Sciences, University of Padua, Italy.

出版信息

Pharmacol Res. 2021 Feb;164:105326. doi: 10.1016/j.phrs.2020.105326. Epub 2020 Dec 15.

DOI:10.1016/j.phrs.2020.105326
PMID:33338625
Abstract

The two-pore potassium channel TASK-3 has been shown to localize to both the plasma membrane and the mitochondrial inner membrane. TASK-3 is highly expressed in melanoma and breast cancer cells and has been proposed to promote tumor formation. Here we investigated whether pharmacological modulation of TASK-3, and specifically of mitochondrial TASK-3 (mitoTASK-3), had any effect on cancer cell survival and mitochondrial physiology. A novel, mitochondriotropic version of the specific TASK-3 inhibitor IN-THPP has been synthesized by addition of a positively charged triphenylphosphonium moiety. While IN-THPP was unable to induce apoptosis, mitoIN-THPP decreased survival of breast cancer cells and efficiently killed melanoma lines, which we show to express mitoTASK-3. Cell death was accompanied by mitochondrial membrane depolarization and fragmentation of the mitochondrial network, suggesting a role of the channel in the maintenance of the correct function of this organelle. In accordance, cells treated with mitoIN-THPP became rapidly depleted of mitochondrial ATP which resulted in activation of the AMP-dependent kinase AMPK. Importantly, cell survival was not affected in mouse embryonic fibroblasts and the effect of mitoIN-THPP was less pronounced in human melanoma cells stably knocked down for TASK-3 expression, indicating a certain degree of selectivity of the drug both for pathological cells and for the channel. In addition, mitoIN-THPP inhibited cancer cell migration to a higher extent than IN-THPP in two melanoma cell lines. In summary, our results point to the importance of mitoTASK-3 for melanoma cell survival and migration.

摘要

双孔钾通道 TASK-3 已被证明定位于质膜和线粒体内膜。TASK-3 在黑色素瘤和乳腺癌细胞中高度表达,并被提议促进肿瘤形成。在这里,我们研究了 TASK-3 的药理学调节,特别是线粒体 TASK-3(mitoTASK-3)是否对癌细胞存活和线粒体生理学有任何影响。通过添加带正电荷的三苯基膦部分,合成了一种新型的、靶向线粒体的特异性 TASK-3 抑制剂 IN-THPP。虽然 IN-THPP 不能诱导细胞凋亡,但 mitoIN-THPP 降低了乳腺癌细胞的存活率,并有效地杀死了黑色素瘤系,我们证明这些细胞表达 mitoTASK-3。细胞死亡伴随着线粒体膜去极化和线粒体网络的碎片化,表明该通道在维持该细胞器的正常功能中发挥作用。因此,用 mitoIN-THPP 处理的细胞迅速耗尽线粒体 ATP,导致 AMP 依赖的激酶 AMPK 的激活。重要的是,小鼠胚胎成纤维细胞中的细胞存活不受影响,并且 TASK-3 表达稳定敲低的人黑色素瘤细胞中 mitoIN-THPP 的作用不那么明显,这表明该药物对病理细胞和通道具有一定程度的选择性。此外,mitoIN-THPP 在两种黑色素瘤细胞系中比 IN-THPP 更能抑制癌细胞迁移。总之,我们的结果表明 mitoTASK-3 对于黑色素瘤细胞的存活和迁移很重要。

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