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首页> 外文期刊>International Journal of Nanomedicine >Inhibition of H1N1 influenza virus-induced apoptosis by functionalized selenium nanoparticles with amantadine through ROS-mediated AKT signaling pathways
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Inhibition of H1N1 influenza virus-induced apoptosis by functionalized selenium nanoparticles with amantadine through ROS-mediated AKT signaling pathways

机译:金刚烷胺功能化硒纳米颗粒通过ROS介导的AKT信号通路抑制H1N1流感病毒诱导的细胞凋亡

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Introduction: As a therapeutic antiviral agent, the clinical application of amantadine (AM) is limited by the emergence of drug-resistant viruses. To overcome the drug-resistant viruses and meet the growing demand of clinical diagnosis, the use of biological nanoparticles (NPs) has increased in order to develop novel anti-influenza drugs. The antiviral activity of selenium NPs with low toxicity and excellent activities has attracted increasing attention for biomedical intervention in recent years. Methods and results: In the present study, surface decoration of selenium NPs by AM (Se@AM) was designed to reverse drug resistance caused by influenza virus infection. Se@AM with less toxicity remarkably inhibited the ability of H1N1 influenza to infect host cells through suppression of the neuraminidase activity. Moreover, Se@AM could prevent H1N1 from infecting Madin Darby Canine Kidney cell line and causing cell apoptosis supported by DNA fragmentation and chromatin condensation. Furthermore, Se@AM obviously inhibited the generation of reactive oxygen species and activation of phosphorylation of AKT. Conclusion: These results demonstrate that Se@AM is a potentially efficient antiviral pharmaceutical agent for H1N1 influenza virus.
机译:简介:作为一种抗病毒药物,金刚烷胺(AM)的临床应用受到耐药性病毒的出现的限制。为了克服抗药性病毒并满足日益增长的临床诊断需求,为了开发新型抗流感药物,已经增加了对生物纳米颗粒(NPs)的使用。近年来,硒纳米管的低毒,高活性的抗病毒活性引起了越来越多的关注。方法和结果:在本研究中,设计了通过AM(Se @ AM)对硒NPs进行表面修饰以逆转由流感病毒感染引起的耐药性。毒性较低的Se @ AM通过抑制神经氨酸酶活性,显着抑制了H1N1流感病毒感染宿主细胞的能力。此外,Se @ AM可以防止H1N1感染Madin Darby犬肾脏细胞系,并导致DNA片段化和染色质凝集支持细胞凋亡。此外,Se @ AM明显抑制了活性氧的产生和AKT磷酸化的激活。结论:这些结果表明,Se @ AM是潜在有效的H1N1流感病毒抗病毒药物。

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