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Both GLS silencing and GLS2 overexpression synergize with oxidative stress against proliferation of glioma cells

机译:GLS沉默和GLS2过表达均与抗胶质瘤细胞增殖的氧化应激协同作用

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摘要

Mitochondrial glutaminase (GA) plays an essential role in cancer cell metabolism, contributing to biosynthesis, bioenergetics and redox balance. Humans contain several GA isozymes encoded by the GLS and GLS2 genes, but the specific roles of each in cancer metabolism are still unclear. In this study, glioma SFxL and LN229 cells with silenced isoenzyme glutaminase KGA (encoded by GLS) showed lower survival ratios and a reduced GSH-dependent antioxidant capacity. These GLS-silenced cells also demonstrated induction of apoptosis indicated by enhanced annexin V binding capacity and caspase 3 activity. GLS silencing was associated with decreased mitochondrial membrane potential (ΔΨm) (JC-1 dye test), indicating that apoptosis was mediated by mitochondrial dysfunction. Similar observations were made in T98 glioma cells overexpressing glutaminase isoenzyme GAB, encoded by GLS2, though some characteristics (GSH/GSSG ratio) were different in the differently treated cell lines. Thus, control of GA isoenzyme expression may prove to be a key tool to alter both metabolic and oxidative stress in cancer therapy. Interestingly, reactive oxygen species (ROS) generation by treatment with oxidizing agents: arsenic trioxide or hydrogen peroxide, synergizes with either KGA silencing or GAB overexpression to suppress malignant properties of glioma cells, including the reduction of cellular motility. Of note, negative modulation of GLS isoforms or GAB overexpression evoked lower c-myc and bcl-2 expression, as well as higher pro-apoptotic bid expression. Combination of modulation of GA expression and treatment with oxidizing agents may become a therapeutic strategy for intractable cancers and provides a multi-angle evaluation system for anti-glioma pre-clinical investigations.
机译:线粒体谷氨酰胺酶(GA)在癌细胞代谢中起着至关重要的作用,有助于生物合成,生物能学和氧化还原平衡。人类含有几种由GLS和GLS2基因编码的GA同工酶,但每种酶在癌症代谢中的具体作用仍不清楚。在这项研究中,具有沉默的同工酶谷氨酰胺酶KGA(由GLS编码)的神经胶质瘤SFxL和LN229细胞显示出较低的存活率和降低的GSH依赖性抗氧化能力。这些GLS沉默的细胞还显示出诱导的凋亡,其表现为增强的膜联蛋白V结合能力和caspase 3活性。 GLS沉默与线粒体膜电位降低(ΔΨm)(JC-1染料测试)有关,表明细胞凋亡是由线粒体功能障碍介导的。在由GLS2编码的过表达谷氨酰胺酶同工酶GAB的T98胶质瘤细胞中也获得了类似的观察结果,尽管在不同处理的细胞系中某些特征(GSH / GSSG比)有所不同。因此,在癌症治疗中,控制GA同工酶表达可能是改变代谢和氧化应激的关键工具。有趣的是,通过用氧化剂:三氧化二砷或过氧化氢处理产生的活性氧(ROS)与KGA沉默或GAB过表达协同作用,以抑制神经胶质瘤细胞的恶性特性,包括降低细胞运动性。值得注意的是,GLS同工型或GAB过表达的负调节引起较低的c-myc和bcl-2表达,以及较高的促凋亡双峰表达。 GA表达调节和氧化剂治疗相结合可能成为顽固性癌症的治疗策略,并为抗神经胶质瘤的临床前研究提供了多角度评估系统。

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