Relative contribution of sequence and structure features to the mRNA binding of Argonaute/EIF2C-miRNA complexes and the degradation of miRNA targets.
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Mihaela Zavolan | Markus Landthaler | Dimos Gaidatzis | Jean Hausser | M. Zavolan | M. Landthaler | Jean Hausser | Lukasz Jaskiewicz | J. Hausser | Dimos Gaidatzis | Lukasz Jaskiewicz
[1] Ivo L. Hofacker,et al. Vienna RNA secondary structure server , 2003, Nucleic Acids Res..
[2] L. Lim,et al. MicroRNA targeting specificity in mammals: determinants beyond seed pairing. , 2007, Molecular cell.
[3] R. Russell,et al. Animal MicroRNAs Confer Robustness to Gene Expression and Have a Significant Impact on 3′UTR Evolution , 2005, Cell.
[4] Y. Li,et al. Incorporating structure to predict microRNA targets. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[5] Julius Brennecke,et al. Identification of Drosophila MicroRNA Targets , 2003, PLoS biology.
[6] Michael T. McManus,et al. Dysregulation of Cardiogenesis, Cardiac Conduction, and Cell Cycle in Mice Lacking miRNA-1-2 , 2007, Cell.
[7] M. Magnasco,et al. Decay rates of human mRNAs: correlation with functional characteristics and sequence attributes. , 2003, Genome research.
[8] Kent A. Spackman,et al. Signal Detection Theory: Valuable Tools for Evaluating Inductive Learning , 1989, ML.
[9] E. Lai. Micro RNAs are complementary to 3′ UTR sequence motifs that mediate negative post-transcriptional regulation , 2002, Nature Genetics.
[10] T. Tuschl,et al. Human Argonaute2 mediates RNA cleavage targeted by miRNAs and siRNAs. , 2004, Molecular cell.
[11] N. Rajewsky,et al. Silencing of microRNAs in vivo with ‘antagomirs’ , 2005, Nature.
[12] Jean YH Yang,et al. Bioconductor: open software development for computational biology and bioinformatics , 2004, Genome Biology.
[13] Mihaela Zavolan,et al. Inference of miRNA targets using evolutionary conservation and pathway analysis , 2007, BMC Bioinformatics.
[14] P. McCullagh,et al. Generalized Linear Models , 1992 .
[15] William H Press,et al. Human microRNAs target a functionally distinct population of genes with AT-rich 3′ UTRs , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[16] Martin L. Miller,et al. Transfection of small RNAs globally perturbs gene regulation by endogenous microRNAs , 2009, Nature Biotechnology.
[17] Dang D. Long,et al. mirWIP: microRNA target prediction based on microRNA-containing ribonucleoprotein–enriched transcripts , 2008, Nature Methods.
[18] John G Doench,et al. Specificity of microRNA target selection in translational repression. , 2004, Genes & development.
[19] G. Ruvkun,et al. Posttranscriptional regulation of the heterochronic gene lin-14 by lin-4 mediates temporal pattern formation in C. elegans , 1993, Cell.
[20] A. Pasquinelli,et al. Regulation by let-7 and lin-4 miRNAs Results in Target mRNA Degradation , 2005, Cell.
[21] Shuang Huang,et al. Involvement of MicroRNA in AU-Rich Element-Mediated mRNA Instability , 2005, Cell.
[22] Zhenyu Xuan,et al. A biochemical approach to identifying microRNA targets , 2007, Proceedings of the National Academy of Sciences.
[23] R. Russell,et al. Principles of MicroRNA–Target Recognition , 2005, PLoS biology.
[24] Dang D. Long,et al. Potent effect of target structure on microRNA function , 2007, Nature Structural &Molecular Biology.
[25] Ran Elkon,et al. Removal of AU Bias from Microarray mRNA Expression Data Enhances Computational Identification of Active MicroRNAs , 2008, PLoS Comput. Biol..
[26] L. Lim,et al. Transcripts Targeted by the MicroRNA-16 Family Cooperatively Regulate Cell Cycle Progression , 2007, Molecular and Cellular Biology.
[27] Stefan L Ameres,et al. Molecular Basis for Target RNA Recognition and Cleavage by Human RISC , 2007, Cell.
[28] W. Filipowicz,et al. Relief of microRNA-Mediated Translational Repression in Human Cells Subjected to Stress , 2006, Cell.
[29] Stefan L Ameres,et al. The impact of target site accessibility on the design of effective siRNAs , 2008, Nature Biotechnology.
[30] C. Burge,et al. Prediction of Mammalian MicroRNA Targets , 2003, Cell.
[31] J. Castle,et al. Microarray analysis shows that some microRNAs downregulate large numbers of target mRNAs , 2005, Nature.
[32] Rafael A. Irizarry,et al. A Model-Based Background Adjustment for Oligonucleotide Expression Arrays , 2004 .
[33] Uwe Ohler,et al. Spatial preferences of microRNA targets in 3' untranslated regions , 2007, BMC Genomics.
[34] B. Reinhart,et al. The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans , 2000, Nature.
[35] D. Bartel,et al. The impact of microRNAs on protein output , 2008, Nature.
[36] Joshua J. Forman,et al. A search for conserved sequences in coding regions reveals that the let-7 microRNA targets Dicer within its coding sequence , 2008, Proceedings of the National Academy of Sciences.
[37] M. Zavolan,et al. Molecular characterization of human Argonaute-containing ribonucleoprotein complexes and their bound target mRNAs. , 2008, RNA.
[38] C. Burge,et al. Conserved Seed Pairing, Often Flanked by Adenosines, Indicates that Thousands of Human Genes are MicroRNA Targets , 2005, Cell.
[39] N. Rajewsky,et al. Widespread changes in protein synthesis induced by microRNAs , 2008, Nature.
[40] E. Izaurralde,et al. P bodies: at the crossroads of post-transcriptional pathways , 2007, Nature Reviews Molecular Cell Biology.
[41] Masato Nagino,et al. let-7 regulates Dicer expression and constitutes a negative feedback loop. , 2008, Carcinogenesis.
[42] Michael Kertesz,et al. The role of site accessibility in microRNA target recognition , 2007, Nature Genetics.
[43] Reuven Agami,et al. RNA-Binding Protein Dnd1 Inhibits MicroRNA Access to Target mRNA , 2007, Cell.