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L Lin  Q Liu  N Berube  S Detmer  Y Zhou 《Journal of virology》2012,86(19):10359-10369
Limited protection of current vaccines and antiviral drugs against influenza A virus infection underscores the urgent need for development of novel anti-influenza virus interventions. While short interfering RNA (siRNA) has been shown to be able to inhibit influenza virus infection in a gene-specific manner, activation of the retinoic acid-inducible gene I protein (RIG-I) pathway has an antiviral effect in a non-gene-specific mode. In this study, we designed and tested the anti-influenza virus effect of a short double-stranded RNA, designated 3p-mNP1496-siRNA, that possesses dual functions: an siRNA-targeting influenza NP gene and an agonist for RIG-I activation. This double-stranded siRNA possesses a triphosphate group at the 5' end of the sense strand and is blunt ended. Our study showed that 3p-mNP1496-siRNA could potently inhibit influenza A virus infection both in cell culture and in mice. The strong inhibition effect was attributed to its siRNA function as well as its ability to activate the RIG-I pathway. To the best of our knowledge, this is the first report that the combination of siRNA and RIG-I pathway activation can synergistically inhibit influenza A virus infection. The development of such dual functional RNA molecules will greatly contribute to the arsenal of tools to combat not only influenza viruses but also other important viral pathogens.  相似文献   

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Influenza A virus (IAV) triggers a contagious and potentially lethal respiratory disease. A protective IL-1β response is mediated by innate receptors in macrophages and lung epithelial cells. NLRP3 is crucial in macrophages; however, which sensors elicit IL-1β secretion in lung epithelial cells remains undetermined. Here, we describe for the first time the relative roles of the host innate receptors RIG-I (DDX58), TLR3, and NLRP3 in the IL-1β response to IAV in primary lung epithelial cells. To activate IL-1β secretion, these cells employ partially redundant recognition mechanisms that differ from those described in macrophages. RIG-I had the strongest effect through a MAVS/TRIM25/Riplet–dependent type I IFN signaling pathway upstream of TLR3 and NLRP3. Notably, RIG-I also activated the inflammasome through interaction with caspase 1 and ASC in primary lung epithelial cells. Thus, NS1, an influenza virulence factor that inhibits the RIG-I/type I IFN pathway, strongly modulated the IL-1β response in lung epithelial cells and in ferrets. The NS1 protein derived from a highly pathogenic strain resulted in increased interaction with RIG-I and inhibited type I IFN and IL-1β responses compared to the least pathogenic virus strains. These findings demonstrate that in IAV-infected lung epithelial cells RIG-I activates the inflammasome both directly and through a type I IFN positive feedback loop.  相似文献   

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Influenza A viruses can adapt to new host species, leading to the emergence of novel pathogenic strains. There is evidence that highly pathogenic viruses encode for non-structural 1 (NS1) proteins that are more efficient in suppressing the host immune response. The NS1 protein inhibits type-I interferon (IFN) production partly by blocking the TRIM25 ubiquitin E3 ligase-mediated Lys63-linked ubiquitination of the viral RNA sensor RIG-I, required for its optimal downstream signaling. In order to understand possible mechanisms of viral adaptation and host tropism, we examined the ability of NS1 encoded by human (Cal04), avian (HK156), swine (SwTx98) and mouse-adapted (PR8) influenza viruses to interact with TRIM25 orthologues from mammalian and avian species. Using co-immunoprecipitation assays we show that human TRIM25 binds to all tested NS1 proteins, whereas the chicken TRIM25 ortholog binds preferentially to the NS1 from the avian virus. Strikingly, none of the NS1 proteins were able to bind mouse TRIM25. Since NS1 can inhibit IFN production in mouse, we tested the impact of TRIM25 and NS1 on RIG-I ubiquitination in mouse cells. While NS1 efficiently suppressed human TRIM25-dependent ubiquitination of RIG-I 2CARD, NS1 inhibited the ubiquitination of full-length mouse RIG-I in a mouse TRIM25-independent manner. Therefore, we tested if the ubiquitin E3 ligase Riplet, which has also been shown to ubiquitinate RIG-I, interacts with NS1. We found that NS1 binds mouse Riplet and inhibits its activity to induce IFN-β in murine cells. Furthermore, NS1 proteins of human but not swine or avian viruses were able to interact with human Riplet, thereby suppressing RIG-I ubiquitination. In conclusion, our results indicate that influenza NS1 protein targets TRIM25 and Riplet ubiquitin E3 ligases in a species-specific manner for the inhibition of RIG-I ubiquitination and antiviral IFN production.  相似文献   

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为获得表达甲3型流感病毒(H3N2)M2蛋白的重组天坛株痘苗病毒RVJ1175M2,使用PCR方法扩增流感病毒全长M2基因,将其克隆到天坛株痘苗病毒同源重组质粒pJSC1175中,获得重组质粒pJSC1175M2,通过与痘苗病毒载体同源重组,构建了含流感病毒M2基因的重组痘苗病毒株RVJ1175M2。PCR检测结果证明,流感病毒(H3N2)M2蛋白基因准确插入到天坛株痘苗病毒TK区;Western blot、免疫荧光和流式细胞计数表明重组病毒RVJ1175M2可以有效地表达M2蛋白,表达的M2蛋白有两条带,分别为15kD和13kD,与相关文献报道一致;M2蛋白可有效分布在感染细胞的细胞膜上。这些结果表明重组痘苗病毒株RVJ1175M2可以有效地表达流感病毒M2蛋白,为使用表达M2蛋白的不同类型疫苗进行广谱流感疫苗效果的比较研究奠定了基础。  相似文献   

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禽流感病毒A/Chicken/Guangdong/SS/94(H9N2)HA基因的克隆及序列分析   总被引:10,自引:0,他引:10  
禽流感是由A型流感病毒引起的禽的一种疾病综合症.1878年首次在意大利爆发流行,当时称该病为"鸡瘟".之后,许多国家和地区都有该病的报道,包括美国、英国、澳大利亚、爱尔兰、比利时、荷兰、法国、俄罗斯、加拿大、以色列、匈牙利、日本、中国(包括香港)等[1-3].  相似文献   

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目的:设计、构建并筛选针对流感病毒基质蛋白基因m的小干扰RNA(siRNA),检测其对2009甲型H1N1流感病毒复制的抑制效果。方法:设计3条针对流感病毒m基因的siRNA,并克隆到短发夹型(shRNA)siRNA表达载体pSilencer2.1-U6-hygro上;经测序证明构建成功后,将表达3种siRNA的质粒和阴性对照质粒psiRNA-control分别转染MDCK细胞,用潮霉素筛选稳定表达细胞株,用H1N1流感病毒感染细胞,通过Real-time PCR和Western印迹检测干扰效果。结果:构建了3个针对流感病毒m基因的siRNA表达质粒,3种siRNA均使m基因的mRNA水平降低,其中M1-306的抑制效率达60%;3种siRNA均使流感病毒NA蛋白的表达量降低,M2-25、M1-105的抑制效率明显,M1-306略低。结论:针对m基因的siRNA可以有效抑制流感病毒在MDCK细胞中的复制。  相似文献   

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我们设计合成了特异性靶向乙型肝炎病毒(HBV)mRNA的反义RNA寡核苷酸P-2987、X-60和X-519.在瞬时转染pHBV1.3质粒(含有1.3拷贝的HBV基因组)的HepG2细胞和整合了HBV基因组的HepG2.2.15细胞中,转染2μmol/L的反义RNA寡核苷酸,ELISA和实时定量PCR结果表明,这3条寡核苷酸可以明显抑制HBV的复制和抗原表达.在HBV转基因鼠中,尾静脉注射反义RNA寡核苷酸,结果表明,肝脏中HBV的复制得到了抑制,但是血清中抗原含量和HBV DNA拷贝数没有明显变化.反义RNA寡核苷酸X-519与脂质体的复合物可以增强其对于HBV在肝脏中复制的抑制作用.在通过高压尾静脉注射pHBV1.3质粒建立的HBV急性感染模型中,反义RNA寡核苷酸X-519可以显著地抑制HBV在肝脏中的复制以及降低血清中病毒抗原水平和DNA拷贝数.上述实验结果说明,X-519及其与脂质体的复合物对于HBV的复制和抗原表达起到明显的抑制作用,可能作为一种潜在的针对HBV的基因治疗药物.  相似文献   

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