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Activation of mitogen-activated protein kinases cellular signal transduction pathway in mammalian cells induced by silicon carbide nanowires

机译:碳化硅纳米线诱导哺乳动物细胞中丝裂原活化蛋白激酶细胞信号转导通路的激活

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摘要

Because of emerging biomedical applications of nanoscale materials, the behavior of cells in contact with nanoscale materials must be better understood. SiC nanostructures constitute a new class of biomaterials and have potential in many applications. In this study, the cellular signal transduction processes and toxicity mechanisms of silicon carbide nanowires (SiCNWs) are investigated. The Chinese hamster ovary (CHO) cells in contact with SiCNWs have significantly lower reproduction rates and genomic instability which may be the upstream event of cell apoptosis. Expression of the phosphorylated form of the mitogen-activated protein kinases (MAPKs) family including phosphorylated signal-regulated kinases (p-ERKs), phosphorylated c-Jun NH2-terminal kinases (p-JNKs), and phosphorylated p38-mitogen-activated protein kinases (p-p38) are observed at different time points during exposure to SiCNWs. Moreover, activation of the MAPKs family by phosphorylation which is an upstream event giving rise to expression of cyclooxygenase-2 (COX-2) is also observed. The specific inhibitors of the MAPKs family are found to restrain COX-2 high expression at some time points. Our results show that activation of the MAPKs cellular signaling pathway and over-expression of COX-2 are the main toxicity mechanisms in SiCNWs irritation.
机译:由于纳米材料的新兴生物医学应用,必须更好地了解与纳米材料接触的细胞的行为。 SiC纳米结构构成了一类新的生物材料,并在许多应用中具有潜力。在这项研究中,研究了碳化硅纳米线(SiCNWs)的细胞信号转导过程和毒性机理。与SiCNWs接触的中国仓鼠卵巢(CHO)细胞的繁殖率和基因组不稳定性显着降低,这可能是细胞凋亡的上游事件。丝裂原活化蛋白激酶(MAPKs)家族的磷酸化形式的表达,包括磷酸化信号调节激酶(p-ERKs),磷酸化c-Jun NH2-末端激酶(p-JNKs)和磷酸化p38丝裂原活化蛋白在接触SiCNWs的不同时间点观察到激酶(p-p38)。此外,还观察到通过磷酸化激活MAPKs家族,这是引起环氧合酶-2(COX-2)表达的上游事件。发现MAPKs家族的特异性抑制剂在某些时间点抑制COX-2高表达。我们的结果表明MAPKs细胞信号通路的激活和COX-2的过度表达是SiCNWs刺激的主要毒性机制。

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