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 共查询到20条相似文献,搜索用时 140 毫秒
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Modulation of HIV-1 replication by RNA interference   总被引:231,自引:0,他引:231  
Jacque JM  Triques K  Stevenson M 《Nature》2002,418(6896):435-438
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3.
RNA干涉及其在肿瘤研究中的应用   总被引:1,自引:0,他引:1  
RNAi是双链RNA介导的转录后基因沉默的过程,是一种高效的高特异性抑制基因表达的新途径。通过双链小干涉RNA(siRNA)与一系列蛋白质结合形成siRNA诱导的沉默复合体(RISC)并活化,然后,RISC对靶基因进行识别、降解。与反义方法相比,siRNA具有更好的抑制效果。RNAi的应用将为癌症的基因治疗提供新的方法。  相似文献   

4.
RNAi-mediated gene silencing in non-human primates   总被引:2,自引:0,他引:2  
The opportunity to harness the RNA interference (RNAi) pathway to silence disease-causing genes holds great promise for the development of therapeutics directed against targets that are otherwise not addressable with current medicines. Although there are numerous examples of in vivo silencing of target genes after local delivery of small interfering RNAs (siRNAs), there remain only a few reports of RNAi-mediated silencing in response to systemic delivery of siRNA, and there are no reports of systemic efficacy in non-rodent species. Here we show that siRNAs, when delivered systemically in a liposomal formulation, can silence the disease target apolipoprotein B (ApoB) in non-human primates. APOB-specific siRNAs were encapsulated in stable nucleic acid lipid particles (SNALP) and administered by intravenous injection to cynomolgus monkeys at doses of 1 or 2.5 mg kg(-1). A single siRNA injection resulted in dose-dependent silencing of APOB messenger RNA expression in the liver 48 h after administration, with maximal silencing of >90%. This silencing effect occurred as a result of APOB mRNA cleavage at precisely the site predicted for the RNAi mechanism. Significant reductions in ApoB protein, serum cholesterol and low-density lipoprotein levels were observed as early as 24 h after treatment and lasted for 11 days at the highest siRNA dose, thus demonstrating an immediate, potent and lasting biological effect of siRNA treatment. Our findings show clinically relevant RNAi-mediated gene silencing in non-human primates, supporting RNAi therapeutics as a potential new class of drugs.  相似文献   

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Elbashir SM  Harborth J  Lendeckel W  Yalcin A  Weber K  Tuschl T 《Nature》2001,411(6836):494-498
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7.
Lu R  Maduro M  Li F  Li HW  Broitman-Maduro G  Li WX  Ding SW 《Nature》2005,436(7053):1040-1043
The worm Caenorhabditis elegans is a model system for studying many aspects of biology, including host responses to bacterial pathogens, but it is not known to support replication of any virus. Plants and insects encode multiple Dicer enzymes that recognize distinct precursors of small RNAs and may act cooperatively. However, it is not known whether the single Dicer of worms and mammals is able to initiate the small RNA-guided RNA interference (RNAi) antiviral immunity as occurs in plants and insects. Here we show complete replication of the Flock house virus (FHV) bipartite, plus-strand RNA genome in C. elegans. We show that FHV replication in C. elegans triggers potent antiviral silencing that requires RDE-1, an Argonaute protein essential for RNAi mediated by small interfering RNAs (siRNAs) but not by microRNAs. This immunity system is capable of rapid virus clearance in the absence of FHV B2 protein, which acts as a broad-spectrum RNAi inhibitor upstream of rde-1 by targeting the siRNA precursor. This work establishes a C. elegans model for genetic studies of animal virus-host interactions and indicates that mammals might use a siRNA pathway as an antiviral response.  相似文献   

8.
Short interfering RNA confers intracellular antiviral immunity in human cells   总被引:133,自引:0,他引:133  
Gitlin L  Karelsky S  Andino R 《Nature》2002,418(6896):430-434
Gene silencing mediated by double-stranded RNA (dsRNA) is a sequence-specific, highly conserved mechanism in eukaryotes. In plants, it serves as an antiviral defence mechanism. Animal cells also possess this machinery but its specific function is unclear. Here we demonstrate that dsRNA can effectively protect human cells against infection by a rapidly replicating and highly cytolytic RNA virus. Pre-treatment of human and mouse cells with double-stranded, short interfering RNAs (siRNAs) to the poliovirus genome markedly reduces the titre of virus progeny and promotes clearance of the virus from most of the infected cells. The antiviral effect is sequence-specific and is not attributable to either classical antisense mechanisms or to interferon and the interferon response effectors protein kinase R (PKR) and RNaseL. Protection is the result of direct targeting of the viral genome by siRNA, as sequence analysis of escape virus (resistant to siRNAs) reveals one nucleotide substitution in the middle of the targeted sequence. Thus, siRNAs elicit specific intracellular antiviral resistance that may provide a therapeutic strategy against human viruses.  相似文献   

9.
Recognition of small interfering RNA by a viral suppressor of RNA silencing   总被引:1,自引:0,他引:1  
Ye K  Malinina L  Patel DJ 《Nature》2003,426(6968):874-878
RNA silencing (also known as RNA interference) is a conserved biological response to double-stranded RNA that regulates gene expression, and has evolved in plants as a defence against viruses. The response is mediated by small interfering RNAs (siRNAs), which guide the sequence-specific degradation of cognate messenger RNAs. As a counter-defence, many viruses encode proteins that specifically inhibit the silencing machinery. The p19 protein from the tombusvirus is such a viral suppressor of RNA silencing and has been shown to bind specifically to siRNA. Here, we report the 1.85-A crystal structure of p19 bound to a 21-nucleotide siRNA, where the 19-base-pair RNA duplex is cradled within the concave face of a continuous eight-stranded beta-sheet, formed across the p19 homodimer interface. Direct and water-mediated intermolecular contacts are restricted to the backbone phosphates and sugar 2'-OH groups, consistent with sequence-independent p19-siRNA recognition. Two alpha-helical 'reading heads' project from opposite ends of the p19 homodimer and position pairs of tryptophans for stacking over the terminal base pairs, thereby measuring and bracketing both ends of the siRNA duplex. Our structure provides an illustration of siRNA sequestering by a viral protein.  相似文献   

10.
All viruses rely on host cell proteins and their associated mechanisms to complete the viral life cycle. Identifying the host molecules that participate in each step of virus replication could provide valuable new targets for antiviral therapy, but this goal may take several decades to achieve with conventional forward genetic screening methods and mammalian cell cultures. Here we describe a novel genome-wide RNA interference (RNAi) screen in Drosophila that can be used to identify host genes important for influenza virus replication. After modifying influenza virus to allow infection of Drosophila cells and detection of influenza virus gene expression, we tested an RNAi library against 13,071 genes (90% of the Drosophila genome), identifying over 100 for which suppression in Drosophila cells significantly inhibited or stimulated reporter gene (Renilla luciferase) expression from an influenza-virus-derived vector. The relevance of these findings to influenza virus infection of mammalian cells is illustrated for a subset of the Drosophila genes identified; that is, for three implicated Drosophila genes, the corresponding human homologues ATP6V0D1, COX6A1 and NXF1 are shown to have key functions in the replication of H5N1 and H1N1 influenza A viruses, but not vesicular stomatitis virus or vaccinia virus, in human HEK 293 cells. Thus, we have demonstrated the feasibility of using genome-wide RNAi screens in Drosophila to identify previously unrecognized host proteins that are required for influenza virus replication. This could accelerate the development of new classes of antiviral drugs for chemoprophylaxis and treatment, which are urgently needed given the obstacles to rapid development of an effective vaccine against pandemic influenza and the probable emergence of strains resistant to available drugs.  相似文献   

11.
RNA干涉研究进展   总被引:5,自引:0,他引:5  
RNA干涉(RNAi)是由双链RNA(dsRNA)引起的序列特异性基因沉默,这是目前研究的热点,具有广阔的应用前景.对RNAi的分子机制、生物功能、研究策略及RNAi技术在基因功能、基因治疗、植物品质改良等方面的应用进行了综述.  相似文献   

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RNA干扰是与特定基因同源互补的双链RNA在体内以序列特异的方式引发靶基因的mRNA降解,从而导致转录后基因沉默的过程。由于其在基因沉默中的高度特异性和有效性,在基因功能和基因药物的研究中有很大潜力。综述了RNA干扰可能的分子机制、分子生物特性和其在肿瘤特别是肿瘤转移中的应用。  相似文献   

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West Nile virus (WNV), and related flaviviruses such as tick-borne encephalitis, Japanese encephalitis, yellow fever and dengue viruses, constitute a significant global human health problem. However, our understanding of the molecular interaction of such flaviviruses with mammalian host cells is limited. WNV encodes only 10 proteins, implying that it may use many cellular proteins for infection. WNV enters the cytoplasm through pH-dependent endocytosis, undergoes cycles of translation and replication, assembles progeny virions in association with endoplasmic reticulum, and exits along the secretory pathway. RNA interference (RNAi) presents a powerful forward genetics approach to dissect virus-host cell interactions. Here we report the identification of 305 host proteins that affect WNV infection, using a human-genome-wide RNAi screen. Functional clustering of the genes revealed a complex dependence of this virus on host cell physiology, requiring a wide variety of molecules and cellular pathways for successful infection. We further demonstrate a requirement for the ubiquitin ligase CBLL1 in WNV internalization, a post-entry role for the endoplasmic-reticulum-associated degradation pathway in viral infection, and the monocarboxylic acid transporter MCT4 as a viral replication resistance factor. By extending this study to dengue virus, we show that flaviviruses have both overlapping and unique interaction strategies with host cells. This study provides a comprehensive molecular portrait of WNV-human cell interactions that forms a model for understanding single plus-stranded RNA virus infection, and reveals potential antiviral targets.  相似文献   

15.
RNAi即RNA干扰(RNA interfering),是近几年才发现的一种由双链RNA引起的基因沉默的现象,是目前分子生物学领域研究的热点。介绍RNAi的发现,并对RNAi在生命科学研究领域的最新应用进行综述。  相似文献   

16.
A major impediment in the treatment of neurological diseases is the presence of the blood-brain barrier, which precludes the entry of therapeutic molecules from blood to brain. Here we show that a short peptide derived from rabies virus glycoprotein (RVG) enables the transvascular delivery of small interfering RNA (siRNA) to the brain. This 29-amino-acid peptide specifically binds to the acetylcholine receptor expressed by neuronal cells. To enable siRNA binding, a chimaeric peptide was synthesized by adding nonamer arginine residues at the carboxy terminus of RVG. This RVG-9R peptide was able to bind and transduce siRNA to neuronal cells in vitro, resulting in efficient gene silencing. After intravenous injection into mice, RVG-9R delivered siRNA to the neuronal cells, resulting in specific gene silencing within the brain. Furthermore, intravenous treatment with RVG-9R-bound antiviral siRNA afforded robust protection against fatal viral encephalitis in mice. Repeated administration of RVG-9R-bound siRNA did not induce inflammatory cytokines or anti-peptide antibodies. Thus, RVG-9R provides a safe and noninvasive approach for the delivery of siRNA and potentially other therapeutic molecules across the blood-brain barrier.  相似文献   

17.
RNA interference (RNAi) holds considerable promise as a therapeutic approach to silence disease-causing genes, particularly those that encode so-called 'non-druggable' targets that are not amenable to conventional therapeutics such as small molecules, proteins, or monoclonal antibodies. The main obstacle to achieving in vivo gene silencing by RNAi technologies is delivery. Here we show that chemically modified short interfering RNAs (siRNAs) can silence an endogenous gene encoding apolipoprotein B (apoB) after intravenous injection in mice. Administration of chemically modified siRNAs resulted in silencing of the apoB messenger RNA in liver and jejunum, decreased plasma levels of apoB protein, and reduced total cholesterol. We also show that these siRNAs can silence human apoB in a transgenic mouse model. In our in vivo study, the mechanism of action for the siRNAs was proven to occur through RNAi-mediated mRNA degradation, and we determined that cleavage of the apoB mRNA occurred specifically at the predicted site. These findings demonstrate the therapeutic potential of siRNAs for the treatment of disease.  相似文献   

18.
RNA silencing has been shown to function in the plant antivirus defense response, leading to viral RNA degradation induced by vsiRNA-containing RISC cleavage activity. Cucumber mosaic virus (CMV) 3′UTR sequences share a high conservation of nucleotide sequence and secondary structures that are important for CMV replication. Here, in an attempt to simultaneously target the multiple genomic and subgenomic RNAs of CMV for degradation, CMV 3′UTR were used to design hairpin RNA (hpRNA) to transform tobacco (Xanthi. nc) so as to constitutively produce viral siRNAs. Most of the transgenic plants expressing CMV Q strain (Q-CMV, subgroup Ⅱ strain) RNA3 3′UTR-derived hpRNA showed delayed resistance to Q-CMV infection and exhibited recovery phenotypes. Compared with Q-CMV-inoculated leaves, the upper leaves showed weak or no disease symptoms and a reduced accumulation level of viral RNAs. Together with transient assays, our results indicate that the 3′UTR-derived siRNAs were biologically active in targeting viral RNA for degradation. Recovery resistance in transgenic plants was also observed against subgroup IB strain SD-CMV infection, indicating a broad-spectrum anti-CMV effect of the 3′UTR-based antiviral silencing. Northern blot assays indicated that there was no strong correlation between the degree of resistance and the accumulation level of 3′UTR-derived siRNAs, suggesting that to target a highly structured RNA, such as the CMV 3′UTR, the quantity of siRNAs may not be the only determinant of silencing efficiency. Target RNA secondary structures may also affect target accessibility, siRNA-containing RISC-target recognition and the consequent antiviral effect.  相似文献   

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RNA-MEDIATED GENE SILENCING IS A UNIVERSAL GENE- REGULATION SYSTEM FUNDAMENTAL IN BIOLOGICAL PROCESSESAND PHENOMENA OF THE DOUBLE-STRANDED RNA (DSRNA) TRIGGERED SEQUENCE-SPECIFIC MRNA DEGRADATION[1―3]. RNA SILENCING OCCURS IN A BROAD RANGE OF EUKARYOTIC …  相似文献   

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