Dimeric artificial microRNAs mediate high resistance to RSV and RBSDV in transgenic rice plants
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M. Jiang | Hongmei Liu | Yunzhi Song | Shumei Zhou | Changxiang Zhu | F. Wen | Lin Sun | Chao Lin | J. Du | Jinwen Du
[1] Feng Sun,et al. Genetic analysis and molecular mapping of QTLs for resistance to rice black-streaked dwarf disease in rice , 2015, Scientific Reports.
[2] S. Muthayya,et al. An overview of global rice production, supply, trade, and consumption , 2014, Annals of the New York Academy of Sciences.
[3] P. Trivedi,et al. Artificial microRNA mediated gene silencing in plants: progress and perspectives , 2014, Plant Molecular Biology.
[4] Run-Ze Sun,et al. Effects of the sequence characteristics of miRNAs on multi-viral resistance mediated by single amiRNAs in transgenic tobacco. , 2014, Plant physiology and biochemistry : PPB.
[5] Yi Li,et al. Heterologous expression of artificial miRNAs from rice dwarf virus in transgenic rice , 2014, Plant Cell, Tissue and Organ Culture (PCTOC).
[6] W. Cho,et al. Current Insights into Research on Rice stripe virus , 2013, The plant pathology journal.
[7] Lin Sun,et al. Production of marker-free and RSV-resistant transgenic rice using a twin T-DNA system and RNAi , 2013, Journal of Biosciences.
[8] S. Elena,et al. Fate of artificial microRNA-mediated resistance to plant viruses in mixed infections. , 2013, Phytopathology.
[9] Liying Sun,et al. Characterization of Rice Black-Streaked Dwarf Virus- and Rice Stripe Virus-Derived siRNAs in Singly and Doubly Infected Insect Vector Laodelphax striatellus , 2013, PloS one.
[10] Yi-jun Zhou,et al. Development and use of three monoclonal antibodies for the detection of rice black-streaked dwarf virus in field plants and planthopper vectors , 2013, Virology Journal.
[11] L. Zhang,et al. Viral resistance mediated by shRNA depends on the sequence similarity and mismatched sites between the target sequence and siRNA , 2013, Biologia Plantarum.
[12] Hongying Zheng,et al. A simplified method for constructing artificial microRNAs based on the osa-MIR528 precursor. , 2012, Journal of biotechnology.
[13] N. Chua,et al. Multiple artificial microRNAs targeting conserved motifs of the replicase gene confer robust transgenic resistance to negative-sense single-stranded RNA plant virus. , 2012, Molecular plant pathology.
[14] A. Pasquinelli. MicroRNAs and their targets: recognition, regulation and an emerging reciprocal relationship , 2012, Nature Reviews Genetics.
[15] J. García,et al. Antiviral strategies in plants based on RNA silencing. , 2011, Biochimica et biophysica acta.
[16] T. Omura,et al. Immunity to Rice black streaked dwarf virus, a plant reovirus, can be achieved in rice plants by RNA silencing against the gene for the viroplasm component protein. , 2011, Virus research.
[17] C. Zhang,et al. Special origin of stem sequence influence the resistance of hairpin expressing plants against PVY , 2011, Biologia Plantarum.
[18] T. Zhou,et al. Transmission of Rice Black-Streaked Dwarf Virus from Frozen Infected Leaves to Healthy Rice Plants by Small Brown Planthopper (Laodelphax striatellus) , 2011 .
[19] Yunzhi Song,et al. The choice of target site is crucial in artificial miRNA-mediated virus resistance in transgenic Nicotiana tabacum , 2011 .
[20] Z. Ye,et al. Expression of artificial microRNAs in tomato confers efficient and stable virus resistance in a cell-autonomous manner , 2011, Transgenic Research.
[21] T. Omura,et al. Targeting specific genes for RNA interference is crucial to the development of strong resistance to rice stripe virus. , 2011, Plant biotechnology journal.
[22] M. Jiang,et al. Production of transgenic rice new germplasm with strong resistance against two isolations of Rice stripe virus by RNA interference , 2011, Transgenic Research.
[23] A. Aravin,et al. PIWI-interacting small RNAs: the vanguard of genome defence , 2011, Nature Reviews Molecular Cell Biology.
[24] Ling Jiang,et al. Fine mapping of qSTV11KAS, a major QTL for rice stripe disease resistance , 2011, Theoretical and Applied Genetics.
[25] X. Guo,et al. Highly efficient virus resistance mediated by artificial microRNAs that target the suppressor of PVX and PVY in plants. , 2011, Plant biology.
[26] E. Izaurralde,et al. Gene silencing by microRNAs: contributions of translational repression and mRNA decay , 2011, Nature Reviews Genetics.
[27] W. Filipowicz,et al. Regulation of mRNA translation and stability by microRNAs. , 2010, Annual review of biochemistry.
[28] Nicholas T. Ingolia,et al. Mammalian microRNAs predominantly act to decrease target mRNA levels , 2010, Nature.
[29] M. Kiebler,et al. Faculty Opinions recommendation of Argonaute HITS-CLIP decodes microRNA-mRNA interaction maps. , 2009 .
[30] Guo‐Liang Wang,et al. A Versatile Zero Background T-Vector System for Gene Cloning and Functional Genomics1[C][W][OA] , 2009, Plant Physiology.
[31] R. Xiong,et al. Characterization and subcellular localization of an RNA silencing suppressor encoded by Rice stripe tenuivirus. , 2009, Virology.
[32] O. Voinnet. Origin, Biogenesis, and Activity of Plant MicroRNAs , 2009, Cell.
[33] Ye Ding,et al. A structural interpretation of the effect of GC-content on efficiency of RNA interference , 2009, BMC Bioinformatics.
[34] John J. Rossi,et al. The promises and pitfalls of RNA-interference-based therapeutics , 2009, Nature.
[35] R. Fang,et al. Artificial MicroRNAs Highly Accessible to Targets Confer Efficient Virus Resistance in Plants , 2008, Journal of Virology.
[36] L. Sieburth,et al. Widespread Translational Inhibition by Plant miRNAs and siRNAs , 2008, Science.
[37] Detlef Weigel,et al. Highly Specific Gene Silencing by Artificial miRNAs in Rice , 2008, PloS one.
[38] Olivier Voinnet,et al. Antiviral Immunity Directed by Small RNAs , 2007, Cell.
[39] Yi Li,et al. Rice black-streaked dwarf virus outer capsid protein P10 has self-interactions and forms oligomeric complexes in solution. , 2007, Virus research.
[40] Jing Qu,et al. Artificial MicroRNA-Mediated Virus Resistance in Plants , 2007, Journal of Virology.
[41] N. Chua,et al. Expression of artificial microRNAs in transgenic Arabidopsis thaliana confers virus resistance , 2006, Nature Biotechnology.
[42] Yvonne Tay,et al. A Pattern-Based Method for the Identification of MicroRNA Binding Sites and Their Corresponding Heteroduplexes , 2006, Cell.
[43] S. Oka,et al. Early infection of scutellum tissue with Agrobacterium allows high-speed transformation of rice. , 2006, The Plant journal : for cell and molecular biology.
[44] 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.
[45] Detlef Weigel,et al. Highly Specific Gene Silencing by Artificial MicroRNAs in Arabidopsis[W][OA] , 2006, The Plant Cell Online.
[46] J. García,et al. MicroRNA-Guided Processing Impairs Plum Pox Virus Replication, but the Virus Readily Evolves To Escape This Silencing Mechanism , 2006, Journal of Virology.
[47] V. Patzel,et al. Design of siRNAs producing unstructured guide-RNAs results in improved RNA interference efficiency , 2005, Nature Biotechnology.
[48] David C. Baulcombe,et al. RNA silencing. , 2005, Trends in biochemical sciences.
[49] Volker A Erdmann,et al. Local RNA target structure influences siRNA efficacy: systematic analysis of intentionally designed binding regions. , 2005, Journal of molecular biology.
[50] V. Kim. MicroRNA biogenesis: coordinated cropping and dicing , 2005, Nature Reviews Molecular Cell Biology.
[51] Adam M. Gustafson,et al. microRNA-Directed Phasing during Trans-Acting siRNA Biogenesis in Plants , 2005, Cell.
[52] Javier F. Palatnik,et al. Specific effects of microRNAs on the plant transcriptome. , 2005, Developmental cell.
[53] 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.
[54] D. Baulcombe. RNA silencing in plants , 2004, Nature.
[55] T. Tuschl,et al. Human Argonaute2 mediates RNA cleavage targeted by miRNAs and siRNAs. , 2004, Molecular cell.
[56] D. Chang,et al. The gene-silencing efficiency of siRNA is strongly dependent on the local structure of mRNA at the targeted region. , 2004, Biochemical and biophysical research communications.
[57] Jialin Yu,et al. Sequence Analysis of the Complete Genome of Rice Black-Streaked Dwarf Virus Isolated from Maize with Rough Dwarf Disease , 2003, Virus Genes.
[58] R. Fang,et al. The promoter of a rice glycine-rich protein gene, Osgrp-2, confers vascular-specific expression in transgenic plants , 2003, Planta.
[59] T. Sijen,et al. Negative-Strand Tospoviruses and Tenuiviruses Carry a Gene for a Suppressor of Gene Silencing at Analogous Genomic Positions , 2003, Journal of Virology.
[60] C. Llave,et al. Cleavage of Scarecrow-like mRNA Targets Directed by a Class of Arabidopsis miRNA , 2002, Science.
[61] B. Moury,et al. Specific degradation of 3' regions of GUS mRNA in posttranscriptionally silenced tobacco lines may be related to 5'-3' spreading of silencing. , 2002, RNA.
[62] M. Amarzguioui,et al. Positional effects of short interfering RNAs targeting the human coagulation trigger Tissue Factor. , 2002, Nucleic acids research.
[63] T. Chancellor,et al. The Biology, Epidemiology, and Management of Rice Tungro Disease in Asia. , 2002, Plant disease.
[64] M. J. Adams,et al. Molecular characterisation of segments 1 to 6 of Rice black-streaked dwarf virus from China provides the complete genome , 2001, Archives of Virology.
[65] I. Uyeda,et al. Detection and assignment of proteins encoded by rice black streaked dwarf fijivirus S7, S8, S9 and S10. , 1998, The Journal of general virology.
[66] T. Po,et al. Resistance to rice stripe virus conferred by expression of coat protein in transgenic Indica rice plants regenerated from bombarded suspension culture , 1997 .
[67] R. Hull,et al. Comparison of Sequences of RNAs 3 and 4 of Rice Stripe Virus from China with those of Japanese Isolates , 1997, Virus Genes.
[68] Peter Hajdukiewicz,et al. The small, versatilepPZP family ofAgrobacterium binary vectors for plant transformation , 1994, Plant Molecular Biology.
[69] A. Ishihama,et al. Nucleotide sequence and possible ambisense coding strategy of rice stripe virus RNA segment 2. , 1993, The Journal of general virology.
[70] K. Shimamoto,et al. Genetically engineered rice resistant to rice stripe virus, an insect-transmitted virus. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[71] A. Ishihama,et al. Solubilization and promoter analysis of RNA polymerase from rice stripe virus , 1992, Journal of virology.
[72] I. Uyeda,et al. Conserved terminal nucleotide sequences in the genome of rice black streaked dwarf virus. , 1992, The Journal of general virology.
[73] Y. Zhu,et al. Complete nucleotide sequence of RNA 4 of rice stripe virus isolate T, and comparison with another isolate and with maize stripe virus. , 1992, The Journal of general virology.
[74] T. Omura,et al. Infectivity of Rice Viruses to the Varieties Resistant to Rice Stripe Virus , 1991 .
[75] Y. Zhu,et al. Complete nucleotide sequence of RNA 3 of rice stripe virus: an ambisense coding strategy. , 1991, The Journal of general virology.
[76] T. Kakutani,et al. Ambisense segment 3 of rice stripe virus: the first instance of a virus containing two ambisense segments. , 1991, The Journal of general virology.
[77] A. Ishihama,et al. Complementarity between the 5'- and 3'-terminal sequences of rice stripe virus RNAs. , 1990, The Journal of general virology.
[78] T. Kakutani,et al. Ambisense segment 4 of rice stripe virus: possible evolutionary relationship with phleboviruses and uukuviruses (Bunyaviridae). , 1990, The Journal of general virology.
[79] T. Omura,et al. Morphological characteristics of rice stripe virus. , 1989 .
[80] J. Sanford,et al. The concept of parasite-derived resistance—Deriving resistance genes from the parasite's own genome , 1985 .
[81] X. Tao. An Optimized Freeze-thaw Method for Transformation of Agrobacterium Tumefaciens EHA105 and LBA4404 , 2011 .
[82] G. Carmichael,et al. RNA Silencing , 2005, Methods in Molecular Biology™.
[83] Wang Guizhen,et al. Production of monoclonal antibodies to Rice stripe virus and application in virus detection. , 2004 .
[84] H. Wu,et al. Identification of rice black streaked dwarf virus in different cereal crops with dwarfing symptoms in China. , 2001, Acta virologica.