MicroRNA-dependent localization of targeted mRNAs to mammalian P-bodies
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- 5 June 2005
- journal article
- research article
- Published by Springer Nature in Nature Cell Biology
- Vol. 7 (7) , 719-723
- https://doi.org/10.1038/ncb1274
Abstract
Small RNAs, including small interfering RNAs (siRNAs) and microRNAs (miRNAs) can silence target genes through several different effector mechanisms1. Whereas siRNA-directed mRNA cleavage is increasingly understood, the mechanisms by which miRNAs repress protein synthesis are obscure. Recent studies have revealed the existence of specific cytoplasmic foci, referred to herein as processing bodies (P-bodies), which contain untranslated mRNAs and can serve as sites of mRNA degradation2,3,4,5,6,7. Here we demonstrate that Argonaute proteins — the signature components of the RNA interference (RNAi) effector complex, RISC — localize to mammalian P-bodies. Moreover, reporter mRNAs that are targeted for translational repression by endogenous or exogenous miRNAs become concentrated in P-bodies in a miRNA-dependent manner. These results provide a link between miRNA function and mammalian P-bodies and suggest that translation repression by RISC delivers mRNAs to P-bodies, either as a cause or as a consequence of inhibiting protein synthesis.Keywords
This publication has 31 references indexed in Scilit:
- Decay of mRNAs targeted by RISC requires XRN1, the Ski complex, and the exosomeRNA, 2005
- Mechanisms of gene silencing by double-stranded RNANature, 2004
- The functions of animal microRNAsNature, 2004
- Argonaute2 Is the Catalytic Engine of Mammalian RNAiScience, 2004
- Structural basis for overhang-specific small interfering RNA recognition by the PAZ domainNature, 2004
- From Silencing to Gene ExpressionCell, 2004
- Prediction of Mammalian MicroRNA TargetsCell, 2003
- RNA interferenceNature, 2002
- A Role for the RNase III Enzyme DCR-1 in RNA Interference and Germ Line Development in Caenorhabditis elegansScience, 2001
- Yeast Sm-like proteins function in mRNA decapping and decayNature, 2000