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Robust statistical methods for hit selection in RNA interference high-throughput screening experiments.

RNA interference (RNAi) high-throughput screening (HTS) experiments carried out using large (>5000 short interfering [si]RNA) libraries generate a huge amount of data. In order to use these data to identify the most effective siRNAs tested, it is critical to adopt and develop appropriate statistical methods. To address the questions in hit selection of RNAi HTS, we proposed a quartile-based method which is robust to outliers, true hits and nonsymmetrical data. We compared it with the more traditional tests, mean +/- k standard deviation (SD) and median +/- 3 median of absolute deviation (MAD). The results suggested that the quartile-based method selected more hits than mean +/- k SD under the same preset error rate. The number of hits selected by median +/- k MAD was close to that by the quartile-based method. Further analysis suggested that the quartile-based method had the greatest power in detecting true hits, especially weak or moderate true hits. Our investigation also suggested that platewise analysis (determining effective siRNAs on a plate-by-plate basis) can adjust for systematic errors in different plates, while an experimentwise analysis, in which effective siRNAs are identified in an analysis of the entire experiment, cannot. However, experimentwise analysis may detect a cluster of true positive hits placed together in one or several plates, while platewise analysis may not. To display hit selection results, we designed a specific figure called a plate-well series plot. We thus suggest the following strategy for hit selection in RNAi HTS experiments. First, choose the quartile-based method, or median +/- k MAD, for identifying effective siRNAs. Second, perform the chosen method experimentwise on transformed/normalized data, such as percentage inhibition, to check the possibility of hit clusters. If a cluster of selected hits are observed, repeat the analysis based on untransformed data to determine whether the cluster is due to an artifact in the data. If no clusters of hits are observed, select hits by performing platewise analysis on transformed data. Third, adopt the plate-well series plot to visualize both the data and the hit selection results, as well as to check for artifacts.

Cluster Analysis↗

Short hairpin RNAs induced RNA interference in human cells.

BACKGROUND & OBJECTIVE: RNA interference (RNAi) is an evolutionarily conserved posttranscriptional gene silencing, in which the introduction of double-stranded RNA into a cell leads to specific suppression of gene expression. RNAi has become an important tool for gene function studies. The aim of this study was to induce RNAi in mammalian cells by short hairpin RNAs (shRNAs) generated from a DNA vector, therefore, to provide a new approach for gene function analysis. METHODS: Dual Luciferase System was used to assess the intracellular effect of the shRNAs generated from a DNA vector. The inhibitory effect of this DNA vector-driven shRNAs at different condition was measured. RESULTS: shRNAs generated from the DNA vector induced RNAi in human cells, and suppressed gene expression in a sequence-specific manner. The inhibitory effect was highly related to the target sites. CONCLUSION: shRNAs induced RNAi in human cells and suppressed gene expression in a sequence-specific manner. This approach may be used for gene function study.

Gene Silencing↗

Investigation of the role of TASK-2 channels in rat pulmonary arteries; pharmacological and functional studies following RNA interference procedures.

In the present study, we investigated the ability of RNA interference technology to suppress TASK-2 potassium channel expression in human embryonic kidney (HEK293) cells stably transfected with TASK-2 cDNA and in rat isolated intact pulmonary arteries. Lipofectamine-induced transfection of a specific siRNA sequence targeted against TASK-2 resulted in a dose- and time-dependent decrease in TASK-2 channel protein expression. In siRNA-transfected cells the TASK-2 peak currents were significantly smaller than in control cells at every investigated pH, while the pH sensitivity was not altered. Using scrambled siRNA as a negative control, there were no significant changes in TASK-2 protein expression or current compared to mock-transfected cells. In TASK-2 siRNA-transfected small pulmonary arteries, but not in scrambled siRNA-treated vessels, myocyte resting membrane potential at pH 7.4 was significantly less negative and the hyperpolarisations in response to increasing pH from 6.4 to 8.4 were significantly smaller compared with control. The application of levcromakalim (10 microM), NS1619 (33 microM) and a potassium channel inhibitor cocktail (5 mM 4-aminopyridine, 10 mM tetraethylammonium chloride, 30 microM Ba2+ and 10 microM glibenclamide) had similar effects in control and in siRNA-transfected vessels. The TASK-1 (anandamide-sensitive) contribution to resting membrane potential was comparable in each group. Clofilium (100 microM) generated significantly smaller responses in transfected artery segments. These results suggest that RNA interference techniques are effective at inhibiting TASK-2 channel expression in cultured cells and in intact vessels and that TASK-2 channels have a functional role in setting the membrane potential of pulmonary artery myocytes.

Animals↗

RNA interference in mammalian cells using siRNAs synthesized with T7 RNA polymerase.

Methods that allow the specific silencing of a desired gene are invaluable tools for research. One of these is based on RNA interference (RNAi), a process by which double-stranded RNA (dsRNA) specifically suppresses the expression of a target mRNA. Recently, it has been reported that RNAi also works in mammalian cells if small interfering RNAs (siRNAs) are used to avoid activation of the interferon system by long dsRNA. Thus, RNAi could become a major tool for reverse genetics in mammalian systems. However, the high cost and the limited availability of the short synthetic RNAs and the lack of certainty that a designed siRNA will work present major drawbacks of the siRNA technology. Here we present an alternative method to obtain cheap and large amounts of siRNAs using T7 RNA polymerase. With multiple transfection procedures, including calcium phosphate co-precipitation, we demonstrate silencing of both exogenous and endogenous genes.

Cell Line↗

RNA interference as an antiviral approach: targeting HIV-1.

RNA interference (RNAi) is an evolutionary conserved gene-silencing mechanism in which 21- to 23-mer double-stranded short interfering RNA (siRNA) mediates the sequence-specific degradation of mRNA. The recent discovery that exogenously delivered siRNA can trigger RNAi in mammalian cells raises the possibility of using this technology as a therapeutic tool against pathogenic viruses. This review describes the antiviral RNAi field, which is barely two years-old, with an emphasis on recent studies aimed at suppression of HIV-1.

Animals↗

Differential RNA interference: replacement of endogenous with recombinant low density lipoprotein receptor-related protein (LRP).

The interpretation of experiments involving the overexpression of a recombinant cDNA is often hampered by the interference of mRNA expression from the endogenous gene locus. Unless cell lines from naturally occurring mutations or knockout mice are available, difficult and time-consuming gene targeting techniques are required to inhibit endogenous gene expression. Using a method we refer to as "differential RNA interference" we demonstrate that RNA interference can be used to selectively suppress endogenous gene expression without affecting the expression of a co-transfected recombinant version of the same protein. Functional analyses of recombinant low density lipoprotein receptor-related protein (LRP) to study its involvement in lipid metabolism have been shown to be extremely difficult due to its large cDNA and the unavailability of suitable LRP-deficient cell lines. We constructed an expression vector containing the full-length coding sequence of human LRP fused to EGFP and a vector expressing small hairpin RNA directed against the 3'-untranslated region of the wild-type human LRP mRNA (LRP-shRNA). When overexpressed, EGFP-tagged LRP colocalizes with endogenous LRP and stimulates the uptake of LRP ligands. Overexpression of LRP-shRNA vectors significantly inhibits LRP expression, as judged by quantitative RT-PCR, Western blot and immunofluorescence analysis, and it dramatically decreases receptor-associated protein (RAP) uptake. Finally, co-transfection of EGFP-LRP and LRP-shRNA vectors demonstrates selective inhibition of endogenous LRP expression without affecting simultaneous expression of recombinant LRP protein. Thus, utilization of "differential RNA interference" provides a new experimental approach to selectively study the function of any recombinant protein in any given cell line without interference of endogenous protein expression.

Cell Line↗

Silence of the strands: RNA interference in eukaryotic pathogens.

Double-stranded (ds) RNA interference (RNAi) is a recent technological advance that enables researchers to reduce gene expression at the post-transcriptional level. This form of RNA silencing is initiated by dsRNA, expressed in or introduced into a cell of interest, which triggers homology-dependent degradation of the corresponding mRNA. This versatile technique has remarkable promise as a tool for the study of eukaryotic pathogens. Protozoan parasites and pathogenic fungi often resist manipulation using standard molecular genetic approaches. Researchers studying these organisms need flexible molecular tools, particularly to exploit newly sequenced genomes; this review offers a practical guide to establishing RNAi in pathogenic eukaryotes.

Animals↗

RNA interference by feeding in Paramecium.

RNA interference can be induced very efficiently by feeding the ciliate Paramecium with bacteria engineered to express double-stranded RNA, opening the possibility of large-scale functional screening in this unicell.

Animals↗

[RNA interference and its promising future].

RNA interference(RNAi) is the process of sequence-specific,post-transcriptional gene silencing initiated by double-stranded RNA(dsRNA). Recent studies showed small interfering RNAs (siRNA) generated by Dicer from longer dsRNA specifically suppressed expression of genes in somatic and embryo cells. An RdRP activity might provide amplification by replication of long trigger dsRNAs or copying of short siRNAs in a primer-independent manner. The siRNA primed RdRP reaction converts target mRNA into dsRNA, as well as possibly replicating trigger dsRNA. Both products then serve as DICER substrates, initiating the RdRP chain reaction. The article reviewed possible mechanisms of RNAi and pointed out the promising future of RNAi as a tool for studying gene function and used in gene-specific therapeutics.

English Abstract↗

Use of RNA interference to target cyclin E-overexpressing hepatocellular carcinoma.

RNA interference is the process by which double-stranded RNA directs sequence-specific degradation of mRNA. It has recently been shown that RNA interference can be triggered by 21-nucleotide duplexes of small interfering RNAs (siRNAs) in both cultured mammalian cells and adult mice. We hypothesize that siRNA can be used to specifically target oncogene overexpression in a therapeutic manner. Here, we show that overexpression of the oncogene cyclin E can be suppressed by up to 90% in hepatocellular carcinoma (HCC) cell lines by siRNA targeted on the coding region of cyclin E. We also find that depletion of cyclin E in this manner promotes apoptosis of HCC cells and blocks cell proliferation. Finally, we show that the siRNA oligos inhibits HCC tumor growth in nude mice. Thus, this study demonstrates the therapeutic potential of siRNA on the treatment of HCC by targeting overexpressed oncogenes such as cyclin E. Our results also indicate that cyclin E, which is overexpressed in 70% of HCCs, may serve as a novel therapeutic target.

Animals↗

The use of RNA interference to analyze protein phosphatase function in mammalian cells.

The use of RNA interference to knock down protein phosphatases has proven to be a valuable approach to understanding the functions of these enzymes in mammalian cells. Many protein phosphatases exist as multisubunit and multigene families, which has made it difficult to assess their physiological functions using traditional approaches. The ability to selectively knock down specific subunits and individual isoforms with RNA interference has begun to make it possible to determine the contributions of individual phosphatase proteins to cellular signaling. This chapter describes methods for knocking down protein phosphatases with small interfering RNAs in easily transfectable cells and by the introduction of short-hairpin RNAs into less tractable cells using lentivirus vectors.

Base Sequence↗

Induction of stable RNA interference in mammalian cells.

Over the last years, RNA interference (RNAi) has become a widely used technique that permits the knock-down, and hence functional analysis, of individual genes in vertebrate cells. However, the high failure rate of the RNA molecules used in RNAi experiments continues to be a problem. In this paper, I describe a set of design criteria, experimental steps and expression vectors that can facilitate the effective knock-down of almost any vertebrate gene product in cultured cells or in experimental animals.Gene Therapy (2006) 13, 503-508. doi:10.1038/sj.gt.3302656; published online 29 September 2005.

Adenoviridae↗

Drosophila U6 promoter-driven short hairpin RNAs effectively induce RNA interference in Schneider 2 cells.

The effect of RNA interference (RNAi) is generally more potent in Drosophila Schneider 2 (S2) cells than in mammalian cells. In mammalian cells, PolIII promoter-based DNA vectors can be used to express small interfering RNA (siRNA) or short hairpin RNA (shRNA); however, this has not been demonstrated in cultured Drosophila cells. Here we show that shRNAs transcribed from the Drosophila U6 promoter can efficiently trigger gene silencing in S2 cells. By targeting firefly luciferase mRNA, we assessed the efficacy of the shRNAs and examined the structural requirements for highly effective shRNAs. The silencing effect was dependent on the length of the stem region and the sequence of the loop region. Furthermore, we demonstrate that the expression of the endogenous cyclin E protein can be repressed by the U6 promoter-driven shRNAs. Drosophila U6 promoter-based shRNA expression systems may permit stable gene silencing in S2 cells.

Animals↗

Drosophila development: RNA interference ab ovo.

A novel protein required for RNA interference in Drosophila, Armitage, was identified in a screen for genes involved in embryonic axis formation. In armitage mutants, oocyte polarity and the regulation of oskar mRNA translation are impaired, suggesting that RNA silencing regulates the first steps of Drosophila development.

Animals↗

Duplexes of 21-nucleotide RNAs mediate RNA interference in cultured mammalian cells.

RNA interference (RNAi) is the process of sequence-specific, post-transcriptional gene silencing in animals and plants, initiated by double-stranded RNA (dsRNA) that is homologous in sequence to the silenced gene. The mediators of sequence-specific messenger RNA degradation are 21- and 22-nucleotide small interfering RNAs (siRNAs) generated by ribonuclease III cleavage from longer dsRNAs. Here we show that 21-nucleotide siRNA duplexes specifically suppress expression of endogenous and heterologous genes in different mammalian cell lines, including human embryonic kidney (293) and HeLa cells. Therefore, 21-nucleotide siRNA duplexes provide a new tool for studying gene function in mammalian cells and may eventually be used as gene-specific therapeutics.

Animals↗

Experimental study on the suppression of human nuclear receptor hLRH-1 via a vector-based RNA interference.

To explore the inhibitions of human nuclear receptor hLRH-1 via RNA interference, siRNAs expressing vectors pShLRH-1.1 and pShLRH-1.2, and targeting hLRH-1 were designed and constructed. The recombinants were introduced into hepatocellular carcinoma cells, BEL-7402, mediated by lipofectamin. RT-PCR was carried out to examine the inhibition ratio of hLRH-1 expression. The same method was also applied to analyze the expression of farnesyl pyrophosphate synthetase (FPPS) gene. Our results demonstrated that after transient transfection, both pShLRH-1.1 and pShLRH-1.2 could trigger the efficient inhibition of hLRH-1 in cultured cells, BEL-7402. The inhibition ratios were up to 80%. By comparing with non-transfection and vector-transfection control, the expression of FPPS in cells with inhibition of hLRH-1 was up-regulated significantly. Thus, the inhibition of expression of hLRH-1 in cultured cells was achieved via RNA interference in this study. Our results also suggested that hLRH-1 acts as a negative regulator in FPPS expression.

Carcinoma, Hepatocellular↗

The silent revolution: RNA interference as basic biology, research tool, and therapeutic.

RNA interference (RNAi) is an evolutionarily conserved mechanism for silencing gene expression. In primitive organisms, RNAi protects the genome from viruses and other insertable genetic elements and regulates gene expression during development. The antisense (guide) strand of short double-stranded RNAs is incorporated into an RNA-induced silencing complex that can either suppress protein expression or direct degradation of messenger RNAs that contain homologous sequence(s). The discovery that RNAi works in mammalian cells has sparked intense investigation into its role in normal mammalian cell function, its use as a tool to understand or screen for genes functioning in cellular pathways in healthy and diseased cells and animals, and its potential for therapeutic gene silencing. RNAi may provide an important new therapeutic modality for treating infection, cancer, neurodegenerative disease, and other illnesses, although in vivo delivery of small interfering RNAs into cells remains a significant obstacle.

Animals↗

Quantum-dot based nanoparticles for targeted silencing of HER2/neu gene via RNA interference.

Gene silencing using short interfering RNA (siRNA) is fast becoming an attractive approach to probe gene function in mammalian cells. Although there have been some success in the delivery of siRNA using various methods, tracking their delivery and monitoring their transfection efficiency prove to be hard without a suitable tracking agent. Therefore, a challenge lies with the design of an efficient and at the same time, self-tracking, transfection agent for RNA interference. In this paper, chitosan nanoparticles (NPs) with encapsulated quantum dots (QDs) were synthesized and used to deliver HER2/neu siRNA. Using such a construct, the delivery and transfection of the siRNA can be monitored by the presence of fluorescent QDs in the chitosan NPs. Targeted delivery of HER2 siRNA to HER2-overexpressing SKBR3 breast cancer cells was shown to be specific with chitosan/QD NP surface labeled with HER2 antibody targeting the HER2 receptors on SKBR3 cells. Gene-silencing effects of the conjugated siRNA was also established using the luciferase and HER2 ELISA assays. These self-tracking siRNA delivery NPs will also aid in the monitoring of future gene silencing studies in vivo.

Biocompatible Materials↗