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Amplification activation loop between caspase-8 and -9 dominates artemisinin-induced apoptosis of ASTC-a-1 cells

机译:caspase-8和-9之间的扩增激活环主导青蒿素诱导的ASTC-a-1细胞凋亡

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Although caspases have been demonstrated to be involved in artemisinin (ARTE)-induced apoptosis, their exact functions are not well understood. The aim of this report is to explore the roles of caspase-8, -9 and -3 during ARTE-induced apoptosis in human lung adenocarcinoma (ASTC-a-1) cells. ARTE treatment induces a rapid generation of reactive oxygen species (ROS), and ROS-dependent apoptosis as well as the activation of caspase-8, -9 and -3 via time- and dose-dependent fashion. Of upmost importance, inhibition of caspase-8 or -9, but not caspase-3, almost completely blocks the ARTE-induced not only activation of the caspase-8, -9 and -3 but also apoptosis. In addition, the apoptotic process triggered by ARTE does not involve the Bid cleavage, tBid translocation, significant loss of mitochondrial membrane potential and cytochrome c release from mitochondria. Moreover, silencing Bax/Bak does not prevent the ATRE-induced cell death as well as the activation of caspase-8, -9 and -3. Collectively, our data firstly demonstrate that ARTE triggers a ROS-mediated positive feedback amplification activation loop between caspase-8 and -9 independent of mitochondria, which dominantly mediated the ARTE-induced apoptosis via a caspase-3-independent apoptotic pathway in ASTC-a-1 cells. Our findings imply a potential to develop new derivatives from artemisinin to effectively initiate the amplification activation loop of caspases.
机译:尽管已证实胱天蛋白酶与青蒿素(ARTE)诱导的细胞凋亡有关,但它们的确切功能尚不清楚。本报告的目的是探讨caspase-8,-9和-3在ARTE诱导的人肺腺癌(ASTC-a-1)细胞凋亡中的作用。 ARTE治疗诱导了活性氧(ROS)的快速生成,以及ROS依赖的细胞凋亡以及caspase-8,-9和-3通过时间和剂量依赖的方式激活。最重要的是,对caspase-8或-9(而不是caspase-3)的抑制几乎完全阻断了ARTE诱导的caspase-8,-9和-3的激活以及细胞凋亡。此外,ARTE触发的凋亡过程不涉及Bid切割,tBid易位,线粒体膜电位的显着损失和线粒体释放的细胞色素c。此外,沉默Bax / Bak不能阻止ATRE诱导的细胞死亡以及caspase-8,-9和-3的激活。总体而言,我们的数据首先证明ARTE触发了ROS介导的caspase-8和-9之间的线粒体独立的ROS介导的正反馈放大激活环,这主要通过ASTC-a中caspase-3独立的凋亡途径介导ARTE诱导的凋亡。 -1个细胞。我们的发现暗示从青蒿素开发新衍生物以有效启动胱天蛋白酶的扩增激活环的潜力。

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