Alternate approaches to repress endogenous microRNA activity in Arabidopsis thaliana
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[1] P. Pandolfi,et al. A coding-independent function of gene and pseudogene mRNAs regulates tumour biology , 2010, Nature.
[2] Y. Lee,et al. GTI-2501, an antisense agent targeting R1, the large subunit of human ribonucleotide reductase, shows potent anti-tumor activity against a variety of tumors. , 2006, International journal of oncology.
[3] A. Maule,et al. De novo methylation and co‐suppression induced by a cytoplasmically replicating plant RNA virus , 1998, The EMBO journal.
[4] Yanjie Lu,et al. miRNAs at the heart of the matter , 2008, Journal of Molecular Medicine.
[5] Ming-Bo Wang,et al. The presence of high-molecular-weight viral RNAs interferes with the detection of viral small RNAs. , 2010, RNA.
[6] Jian-Kang Zhu,et al. A miRNA Involved in Phosphate-Starvation Response in Arabidopsis , 2005, Current Biology.
[7] D. Baulcombe,et al. Suppression of Virus Accumulation in Transgenic Plants Exhibiting Silencing of Nuclear Genes. , 1996, The Plant cell.
[8] Chun-Lin Su,et al. Regulation of Phosphate Homeostasis by MicroRNA in Arabidopsis[W] , 2005, The Plant Cell Online.
[9] A. Hamilton,et al. RNA–DNA Interactions and DNA Methylation in Post-Transcriptional Gene Silencing , 1999, Plant Cell.
[10] F. Gubler,et al. The Arabidopsis GAMYB-Like Genes, MYB33 and MYB65, Are MicroRNA-Regulated Genes That Redundantly Facilitate Anther Development , 2005, The Plant Cell Online.
[11] Detlef Weigel,et al. Highly Specific Gene Silencing by Artificial MicroRNAs in Arabidopsis[W][OA] , 2006, The Plant Cell Online.
[12] D. Baulcombe,et al. Defective RNA processing enhances RNA silencing and influences flowering of Arabidopsis , 2006, Proceedings of the National Academy of Sciences.
[13] A. Harel-Bellan,et al. An LNA-based loss-of-function assay for micro-RNAs. , 2006, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[14] Yuichiro Watanabe,et al. Arabidopsis micro-RNA biogenesis through Dicer-like 1 protein functions. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[15] Louise Jones,et al. RNA-directed transcriptional gene silencing in plants can be inherited independently of the RNA trigger and requires Met1 for maintenance , 2001, Current Biology.
[16] A. F. Bochner,et al. An Argonaute Transports siRNAs from the Cytoplasm to the Nucleus , 2008, Science.
[17] N. Fedoroff,et al. The Arabidopsis double-stranded RNA-binding protein HYL1 plays a role in microRNA-mediated gene regulation. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[18] P. Waterhouse,et al. Efficient silencing of endogenous microRNAs using artificial microRNAs in Arabidopsis thaliana. , 2011, Molecular plant.
[19] O. Voinnet,et al. In vivo investigation of the transcription, processing, endonucleolytic activity, and functional relevance of the spatial distribution of a plant miRNA. , 2004, Genes & development.
[20] Phillip A Sharp,et al. MicroRNA sponges: progress and possibilities. , 2010, RNA.
[21] N. Chua,et al. Expression of artificial microRNAs in transgenic Arabidopsis thaliana confers virus resistance , 2006, Nature Biotechnology.
[22] Margaret S. Ebert,et al. MicroRNA sponges: competitive inhibitors of small RNAs in mammalian cells , 2007, Nature Methods.
[23] M. Matzke,et al. Transcriptional silencing and promoter methylation triggered by double‐stranded RNA , 2000, The EMBO journal.
[24] J. M. Thomson,et al. Transgenic over-expression of the microRNA miR-17-92 cluster promotes proliferation and inhibits differentiation of lung epithelial progenitor cells. , 2007, Developmental biology.
[25] Xiaofeng Cao,et al. Role of Arabidopsis ARGONAUTE4 in RNA-Directed DNA Methylation Triggered by Inverted Repeats , 2004, Current Biology.
[26] T. Rana,et al. Specific and potent RNAi in the nucleus of human cells , 2005, Nature Structural &Molecular Biology.
[27] N. Fedoroff,et al. Arabidopsis primary microRNA processing proteins HYL1 and DCL1 define a nuclear body distinct from the Cajal body , 2007, Proceedings of the National Academy of Sciences.
[28] M. Todesco,et al. Target mimicry provides a new mechanism for regulation of microRNA activity , 2007, Nature Genetics.
[29] S. Ekker,et al. Effective targeted gene ‘knockdown’ in zebrafish , 2000, Nature Genetics.
[30] H. Vaucheret,et al. Arabidopsis HEN1 A Genetic Link between Endogenous miRNA Controlling Development and siRNA Controlling Transgene Silencing and Virus Resistance , 2003, Current Biology.
[31] Xuemei Chen,et al. microRNA biogenesis and function in plants , 2005, FEBS letters.
[32] H. L. Sänger,et al. RNA-directed de novo methylation of genomic sequences in plants , 1994, Cell.
[33] E. Blum,et al. Endogenous and Synthetic MicroRNAs Stimulate Simultaneous, Efficient, and Localized Regulation of Multiple Targets in Diverse Species[W] , 2006, The Plant Cell Online.
[34] Yanjie Lu,et al. Retracted: Novel approaches for gene‐specific interference via manipulating actions of microRNAs: Examination on the pacemaker channel genes HCN2 and HCN4 , 2007, Journal of cellular physiology.
[35] W. Filipowicz,et al. Mechanisms of post-transcriptional regulation by microRNAs: are the answers in sight? , 2008, Nature Reviews Genetics.
[36] A. Ganser,et al. Lentivirus-mediated antagomir expression for specific inhibition of miRNA function , 2007, Nucleic acids research.
[37] Di Chen,et al. MicroRNA‐204 Regulates Runx2 Protein Expression and Mesenchymal Progenitor Cell Differentiation , 2009, Stem cells.
[38] Patrick Laufs,et al. MicroRNA regulation of the CUC genes is required for boundary size control in Arabidopsis meristems , 2004, Development.
[39] Luigi Naldini,et al. Stable knockdown of microRNA in vivo by lentiviral vectors , 2009, Nature Methods.
[40] Seryun Kim,et al. PNA-based antisense oligonucleotides for micrornas inhibition in the absence of a transfection reagent. , 2010, Oligonucleotides.
[41] Charles W. Melnyk,et al. JMJ14, a JmjC domain protein, is required for RNA silencing and cell-to-cell movement of an RNA silencing signal in Arabidopsis. , 2010, Genes & development.
[42] D. Baulcombe,et al. Arabidopsis ARGONAUTE1 is an RNA Slicer that selectively recruits microRNAs and short interfering RNAs. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[43] Hai Huang,et al. SERRATE is a novel nuclear regulator in primary microRNA processing in Arabidopsis. , 2006, The Plant journal : for cell and molecular biology.
[44] P. Waterhouse,et al. Construct design for efficient, effective and high-throughput gene silencing in plants. , 2001, The Plant journal : for cell and molecular biology.
[45] Thomas J. Hardcastle,et al. The Arabidopsis RNA-Directed DNA Methylation Argonautes Functionally Diverge Based on Their Expression and Interaction with Target Loci[W][OA] , 2010, Plant Cell.
[46] H. Vaucheret,et al. The Nuclear dsRNA Binding Protein HYL1 Is Required for MicroRNA Accumulation and Plant Development, but Not Posttranscriptional Transgene Silencing , 2004, Current Biology.
[47] J. Messing,et al. CARPEL FACTORY, a Dicer Homolog, and HEN1, a Novel Protein, Act in microRNA Metabolism in Arabidopsis thaliana , 2002, Current Biology.
[48] F. Gubler,et al. Genetic analysis reveals functional redundancy and the major target genes of the Arabidopsis miR159 family , 2007, Proceedings of the National Academy of Sciences.
[49] Yuda Fang,et al. Identification of Nuclear Dicing Bodies Containing Proteins for MicroRNA Biogenesis in Living Arabidopsis Plants , 2007, Current Biology.
[50] G. Meister,et al. Fluorescence correlation spectroscopy and fluorescence cross-correlation spectroscopy reveal the cytoplasmic origination of loaded nuclear RISC in vivo in human cells , 2008, Nucleic acids research.
[51] P. Waterhouse,et al. The Arabidopsis thaliana double-stranded RNA binding protein DRB1 directs guide strand selection from microRNA duplexes. , 2009, RNA.
[52] Xianwu Zheng,et al. Role of Arabidopsis AGO6 in siRNA accumulation, DNA methylation and transcriptional gene silencing , 2007, The EMBO journal.
[53] Detlef Weigel,et al. A Collection of Target Mimics for Comprehensive Analysis of MicroRNA Function in Arabidopsis thaliana , 2010, PLoS genetics.
[54] P. Laufs,et al. The Balance between the MIR164A and CUC2 Genes Controls Leaf Margin Serration in Arabidopsis[W] , 2006, The Plant Cell Online.
[55] M. Schmid,et al. Genome-Wide Insertional Mutagenesis of Arabidopsis thaliana , 2003, Science.
[56] C. Esau,et al. Inhibition of microRNA with antisense oligonucleotides. , 2008, Methods.
[57] M. Gleave,et al. Antitumor activity of antisense clusterin oligonucleotides is improved in vitro and in vivo by incorporation of 2'-O-(2-methoxy)ethyl chemistry. , 2001, The Journal of pharmacology and experimental therapeutics.
[58] Elliot M. Meyerowitz,et al. The early extra petals1 Mutant Uncovers a Role for MicroRNA miR164c in Regulating Petal Number in Arabidopsis , 2005, Current Biology.
[59] C. Barbato,et al. MicroRNA‐92 modulates K(+) Cl(−) co‐transporter KCC2 expression in cerebellar granule neurons , 2010, Journal of neurochemistry.
[60] Gang Wu,et al. Nuclear processing and export of microRNAs in Arabidopsis. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[61] S. Freier,et al. Improved targeting of miRNA with antisense oligonucleotides , 2006, Nucleic acids research.
[62] C. Pikaard,et al. Plant Nuclear RNA Polymerase IV Mediates siRNA and DNA Methylation-Dependent Heterochromatin Formation , 2005, Cell.
[63] G. George,et al. Suppression of microRNA accumulation via RNA interference in Arabidopsis thaliana , 2010, Plant Molecular Biology.
[64] C. Croce,et al. MicroRNA-133 controls cardiac hypertrophy , 2007, Nature Medicine.
[65] Chun-Lin Su,et al. pho2, a Phosphate Overaccumulator, Is Caused by a Nonsense Mutation in a MicroRNA399 Target Gene1[W] , 2006, Plant Physiology.
[66] Elliot M Meyerowitz,et al. Redundancy and specialization among plant microRNAs: role of the MIR164 family in developmental robustness , 2007, Development.
[67] N. Kutsuna,et al. Specific Enrichment of miRNAs in Arabidopsis thaliana Infected with Tobacco mosaic virus , 2007, DNA research : an international journal for rapid publication of reports on genes and genomes.
[68] Phillip A. Sharp,et al. Emerging Roles for Natural MicroRNA Sponges , 2010, Current Biology.
[69] Michael A. Beer,et al. Transactivation of miR-34a by p53 broadly influences gene expression and promotes apoptosis. , 2007, Molecular cell.
[70] Jing Qu,et al. Artificial MicroRNA-Mediated Virus Resistance in Plants , 2007, Journal of Virology.
[71] S. Oh,et al. A highly effective and long-lasting inhibition of miRNAs with PNA-based antisense oligonucleotides , 2009, Molecules and cells.
[72] D. V. Vactor,et al. NIH-PA Author Manuscript NIH-PA Author Manuscript NIH-PA Author Manuscript NIH Public Access Author Manuscript Nat Methods. Author manuscript; available in PMC 2011 September 30. , 2009 .
[73] Yuasa Takashi,et al. The interaction between DCL1 and HYL1 is important for efficient and precise processing of pri-miRNA in plant microRNA biogenesis. , 2005, RNA.
[74] David P. Kreil,et al. Atypical RNA polymerase subunits required for RNA-directed DNA methylation , 2005, Nature Genetics.
[75] C. Burge,et al. Conserved Seed Pairing, Often Flanked by Adenosines, Indicates that Thousands of Human Genes are MicroRNA Targets , 2005, Cell.
[76] E. Sontheimer,et al. Origins and Mechanisms of miRNAs and siRNAs , 2009, Cell.
[77] Franck Vazquez,et al. The action of ARGONAUTE1 in the miRNA pathway and its regulation by the miRNA pathway are crucial for plant development. , 2004, Genes & development.