Bhattacharya Kaushik, Bag Arup K, Tripathi Rakshamani, Samanta Suman K, Pal Bikas C, Shaha Chandrima, Mandal Chitra
Cancer Biology and Inflammatory Disorder Division, Council of Scientific and Industrial Research (CSIR)-Indian Institute of Chemical Biology 4, Raja S.C. Mullick Road, Jadavpur, Kolkata-700032, India.
Cell Death and Differentiation Research, National Institute of Immunology New Delhi, India.
Am J Cancer Res. 2014 Nov 19;4(6):629-47. eCollection 2014.
The Electron transport chain (ETC) is responsible for oxidative phosphorylation-mediated mitochondrial respiration. Here we wanted to address the mahanine-induced targeted pathways in glioblastoma multiforme (GBM) in the context of G0/G1 phase arrest and redox alteration. We have demonstrated mahanine, as a novel mitochondrial complex-III inhibitor which induced G0/G1 phase arrest in GBM. This event was preceded by accumulation of intracellular ROS by the inhibition of mitochondrial ETC. The accumulated ROS induced DNA damage response (DDR), that mediated Chk1/Chk2 upregulation and activation which were essential factors for the G0/G1 arrest. NAC-mediated scavenging of ROS generation reduced the propensity of G0/G1 phase arrest in GBM cells by mahanine. Knockdown of Chk1/Chk2 also affected the cell cycle inhibitory potential of mahanine. During G0/G1 arrest, other hallmark proteins like, cyclin D1/cyclin D3, CDK4/CDK6 and CDC25A were also downregulated. The G0/G1 phase restriction property of mahanine was also established in in vivo mice model. Mahanine-induced complex-III inhibition triggered enhanced ROS in hypoxia responsible for higher G0/G1 arrest. Furthermore, we demonstrated that mahanine-treated G0/G1 arrested cells were less potent to form xenograft tumor in vivo. Additionally, they exhibited reduced ability to migrate and form intracellular tube-like structures. Moreover, they became susceptible to differentiate and astrocyte-like cells were generated from the epithelial lineage. Taken together, our results established that complex-III of ETC is one of the possible potential targets of mahanine. This nontoxic chemotherapeutic molecule enhanced ROS production, induced cell cycle arrest and thereafter regressed GBM without effecting normal astrocytes.
电子传递链(ETC)负责氧化磷酸化介导的线粒体呼吸作用。在此,我们希望在G0/G1期停滞和氧化还原改变的背景下,探讨马汉宁在多形性胶质母细胞瘤(GBM)中诱导的靶向途径。我们已证明马汉宁是一种新型的线粒体复合物III抑制剂,可诱导GBM细胞发生G0/G1期停滞。此事件之前,线粒体ETC受到抑制,导致细胞内活性氧(ROS)积累。积累的ROS诱导DNA损伤反应(DDR),介导Chk1/Chk2上调和激活,而Chk1/Chk2是G0/G1期停滞的关键因素。NAC介导的ROS生成清除降低了马汉宁诱导GBM细胞发生G0/G1期停滞的倾向。敲低Chk1/Chk2也影响了马汉宁的细胞周期抑制潜能。在G0/G1期停滞期间,其他标志性蛋白如细胞周期蛋白D1/细胞周期蛋白D3、细胞周期蛋白依赖性激酶4/细胞周期蛋白依赖性激酶6和细胞周期蛋白磷酸酶25A也下调。马汉宁的G0/G1期限制特性也在体内小鼠模型中得到证实。马汉宁诱导的复合物III抑制在缺氧条件下引发ROS增强,导致更高程度的G0/G1期停滞。此外,我们证明经马汉宁处理的G0/G1期停滞细胞在体内形成异种移植肿瘤的能力较弱。此外,它们迁移和形成细胞内管状结构的能力降低。而且,它们易于分化,上皮谱系产生星形胶质细胞样细胞。综上所述,我们的结果表明ETC的复合物III是马汉宁可能的潜在靶点之一。这种无毒化疗分子增强ROS产生,诱导细胞周期停滞,进而使GBM消退,且不影响正常星形胶质细胞。