Large-scale production of dsRNA and siRNA pools for RNA interference utilizing bacteriophage ϕ6 RNA-dependent RNA polymerase
- 19 January 2007
- journal article
- Published by Cold Spring Harbor Laboratory in RNA
- Vol. 13 (3) , 422-429
- https://doi.org/10.1261/rna.348307
Abstract
The discovery of RNA interference (RNAi) has revolutionized biological research and has a huge potential for therapy. Since small double-stranded RNAs (dsRNAs) are required for various RNAi applications, there is a need for cost-effective methods for producing large quantities of high-quality dsRNA. We present two novel, flexible virus-based systems for the efficient production of dsRNA: (1) an in vitro system utilizing the combination of T7 RNA polymerase and RNA-dependent RNA polymerase (RdRP) of bacteriophage ϕ6 to generate dsRNA molecules of practically unlimited length, and (2) an in vivo RNA replication system based on carrier state bacterial cells containing the ϕ6 polymerase complex to produce virtually unlimited amounts of dsRNA of up to 4.0 kb. We show that pools of small interfering RNAs (siRNAs) derived from dsRNA produced by these systems significantly decreased the expression of a transgene (eGFP) in HeLa cells and blocked endogenous pro-apoptotic BAX expression and subsequent cell death in cultured sympathetic neurons.Keywords
This publication has 39 references indexed in Scilit:
- Induction of the interferon response by siRNA is cell type– and duplex length–dependentRNA, 2006
- Specific and nontoxic silencing in mammalian cells with expressed long dsRNAsNucleic Acids Research, 2006
- The therapeutic potential of RNA interferenceFEBS Letters, 2005
- Defining and Assaying RNAi in Mammalian CellsMolecular Cell, 2005
- Mechanisms of gene silencing by double-stranded RNANature, 2004
- Self-assembly of double-stranded RNA bacteriophagesVirus Research, 2004
- Induction of an interferon response by RNAi vectors in mammalian cellsNature Genetics, 2003
- Killing the messenger: short RNAs that silence gene expressionNature Reviews Molecular Cell Biology, 2003
- Expression profiling reveals off-target gene regulation by RNAiNature Biotechnology, 2003
- Human Glial Cell Line-derived Neurotrophic Factor Receptor α4 Is the Receptor for Persephin and Is Predominantly Expressed in Normal and Malignant Thyroid Medullary CellsJournal of Biological Chemistry, 2001