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JNK and NADPH Oxidase Involved in Fluoride-Induced Oxidative Stress in BV-2 Microglia Cells

机译:JNK和NADPH氧化酶参与BV-2小胶质细胞的氟化物诱导的氧化应激。

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Excessive fluoride may cause central nervous system (CNS) dysfunction, and oxidative stress is a recognized mode of action of fluoride toxicity. In CNS, activated microglial cells can release more reactive oxygen species (ROS), and NADPH oxidase (NOX) is the major enzyme for the production of extracellular superoxide in microglia. ROS have been characterized as an important secondary messenger and modulator for various mammalian intracellular signaling pathways, including the MAPK pathways. In this study we examined ROS production and TNF-α, IL-1βinflammatory cytokines releasing, and the expression of MAPKs in BV-2 microglia cells treated with fluoride. We found that fluoride increased JNK phosphorylation level of BV-2 cells and pretreatment with JNK inhibitor SP600125 markedly reduced the levels of intracellularO2·−and NO. NOX inhibitor apocynin and iNOS inhibitor SMT dramatically decreased NaF-induced ROS and NO generations, respectively. Antioxidant melatonin (MEL) resulted in a reduction in JNK phosphorylation in fluoride-stimulated BV-2 microglia. The results confirmed that NOX and iNOS played an important role in fluoride inducing oxidative stress and NO production and JNK took part in the oxidative stress induced by fluoride and meanwhile also could be activated by ROS in fluoride-treated BV-2 cells.
机译:过量的氟化物可能导致中枢神经系统(CNS)功能障碍,氧化应激是公认的氟化物毒性作用方式。在中枢神经系统中,活化的小胶质细胞可以释放更多的活性氧(ROS),而NADPH氧化酶(NOX)是在小胶质细胞中产生细胞外超氧化物的主要酶。 ROS已被表征为各种哺乳动物细胞内信号传导途径(包括MAPK途径)的重要辅助信使和调节剂。在这项研究中,我们检查了经氟化物处理的BV-2小胶质细胞中ROS的产生和TNF-α,IL-1β炎性细胞因子的释放以及MAPKs的表达。我们发现氟化物增加了BV-2细胞的JNK磷酸化水平,并且用JNK抑制剂SP600125预处理显着降低了细胞内O2-和NO的水平。 NOX抑制剂Apocynin和iNOS抑制剂SMT分别显着降低了NaF诱导的ROS和NO生成。抗氧化剂褪黑激素(MEL)导致氟化物刺激的BV-2小胶质细胞JNK磷酸化水平降低。结果证实,NOX和iNOS在氟化物诱导氧化应激和NO产生中起重要作用,JNK参与了氟化物诱导的氧化应激,同时也可以被ROS激活。

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