Department of Physiology, Yong Loo Lin School of Medicine, Singapore.
Blood. 2011 Jun 9;117(23):6214-26. doi: 10.1182/blood-2010-08-301283. Epub 2011 Apr 7.
The small GTPase Rac1 is involved in the activation of the reduced NAD phosphate oxidase complex resulting in superoxide production. We recently showed that Bcl-2 overexpression inhibited apoptosis in leukemia cells by creating a pro-oxidant intracellular milieu, and that inhibiting intracellular superoxide production sensitized Bcl-2-overexpressing cells to apoptotic stimuli. We report here that silencing and functional inhibition of Rac1 block Bcl-2-mediated increase in intracellular superoxide levels in tumor cells. Using confocal, electron microscopy and coimmunoprecipitation, as well as glutathione S-transferase-fusion proteins, we provide evidence for a colocalization and physical interaction between the 2 proteins. This interaction is blocked in vitro and in vivo by the BH3 mimetics as well as by synthetic Bcl-2 BH3 domain peptides. That this interaction is functionally relevant is supported by the ability of the Bcl-2 BH3 peptide as well as the silencing and functional inhibition of Rac1 to inhibit intracellular superoxide production as well as overcome Bcl-2-mediated drug resistance in human leukemia cells and cervical cancer cells. Notably, the interaction was observed in primary cells derived from patients with B-cell lymphoma overexpressing Bcl-2 but not in noncancerous tissue. These data provide a novel facet in the biology of Bcl-2 with potential implications for targeted anticancer drug design.
小分子 GTPase Rac1 参与还原型 NAD 磷酸氧化酶复合物的激活,导致超氧化物的产生。我们最近表明,Bcl-2 的过表达通过创造一个有利于氧化的细胞内环境来抑制白血病细胞的凋亡,并且抑制细胞内超氧化物的产生使 Bcl-2 过表达的细胞对凋亡刺激敏感。我们在这里报告,沉默和功能性抑制 Rac1 阻断了 Bcl-2 介导的肿瘤细胞内超氧阴离子水平的增加。通过共聚焦显微镜、电子显微镜和免疫共沉淀,以及谷胱甘肽 S-转移酶融合蛋白,我们提供了证据表明这两种蛋白质之间存在共定位和物理相互作用。这种相互作用在体外和体内被 BH3 模拟物以及合成的 Bcl-2 BH3 结构域肽所阻断。这种相互作用具有功能相关性,这是由 Bcl-2 BH3 肽、Rac1 的沉默和功能性抑制以及抑制细胞内超氧化物产生的能力来支持的,同时也克服了人白血病细胞和宫颈癌细胞中 Bcl-2 介导的耐药性。值得注意的是,这种相互作用在过表达 Bcl-2 的 B 细胞淋巴瘤患者来源的原代细胞中观察到,但在非癌组织中没有观察到。这些数据为 Bcl-2 的生物学提供了一个新的方面,可能对靶向抗癌药物设计具有重要意义。