Sustained NIK-mediated antiviral signalling confers broad-spectrum tolerance to begomoviruses in cultivated plants.
暂无分享,去创建一个
Joanne Chory | Otávio J. B. Brustolini | Fabyano F Silva | Jorge A. Condori-Apfata | Michihito Deguchi | Anésia A. Santos | J. Chory | F. Silva | W. A. Pereira | A. Inoue-Nagata | E. Fontes | Michihito Deguchi | F. Zerbini | Otávio J B Brustolini | Joao Paulo B Machado | Jorge A Condori-Apfata | Daniela Coco | Virgílio A P Loriato | Welison A Pereira | Poliane Alfenas-Zerbini | Francisco M Zerbini | Alice K Inoue-Nagata | Anesia A Santos | Elizabeth P B Fontes | P. Alfenas‐Zerbini | J. P. Machado | V. Loriato | D. Coco | J. P. B. Machado | F. F. Silva | P. Alfenas‑Zerbini | J. A. Condori-Apfata
[1] Joanne Chory,et al. NIK1-mediated translation suppression functions as a plant antiviral immunity mechanism , 2015, Nature.
[2] Xin He,et al. Comparative Transcriptome Profiling of a Resistant vs. Susceptible Tomato (Solanum lycopersicum) Cultivar in Response to Infection by Tomato Yellow Leaf Curl Virus , 2013, PloS one.
[3] Tara E. Nash,et al. Peptide Aptamers That Bind to Geminivirus Replication Proteins Confer a Resistance Phenotype to Tomato Yellow Leaf Curl Virus and Tomato Mottle Virus Infection in Tomato , 2013, Journal of Virology.
[4] Tao Jiang,et al. Differential gene expression analysis using coexpression and RNA-Seq data , 2013, 2013 IEEE 3rd International Conference on Computational Advances in Bio and medical Sciences (ICCABS).
[5] Otávio J. B. Brustolini,et al. The tomato RLK superfamily: phylogeny and functional predictions about the role of the LRRII-RLK subfamily in antiviral defense , 2012, BMC Plant Biology.
[6] F. Jan,et al. Evaluation of DNA fragments covering the entire genome of a monopartite begomovirus for induction of viral resistance in transgenic plants via gene silencing , 2011, Transgenic Research.
[7] A. Inoue-Nagata,et al. Further characterization of tomato-infecting begomoviruses in Brazil , 2012, Archives of Virology.
[8] Sandrine Dudoit,et al. GC-Content Normalization for RNA-Seq Data , 2011, BMC Bioinformatics.
[9] B. Hohn,et al. Antibegomoviral activity of the agrobacterial virulence protein VirE2 , 2011, Virus Genes.
[10] Y. Zafar,et al. Engineering cotton (Gossypium hirsutum L.) for resistance to cotton leaf curl disease using viral truncated AC1 DNA sequences , 2011, Virus Genes.
[11] Anésia A. Santos,et al. NSP-interacting kinase, NIK: a transducer of plant defence signalling. , 2010, Journal of experimental botany.
[12] Thomas J. Hardcastle,et al. baySeq: Empirical Bayesian methods for identifying differential expression in sequence count data , 2010, BMC Bioinformatics.
[13] W. Huber,et al. which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. MAnorm: a robust model for quantitative comparison of ChIP-Seq data sets , 2011 .
[14] Mark D. Robinson,et al. edgeR: a Bioconductor package for differential expression analysis of digital gene expression data , 2009, Bioinform..
[15] F. Aragão,et al. First transgenic geminivirus-resistant plant in the field , 2009, Nature Biotechnology.
[16] Elizabeth P. B. Fontes,et al. Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling , 2009, PloS one.
[17] Elizabeth P. B. Fontes,et al. Regulated Nuclear Trafficking of rpL10A Mediated by NIK1 Represents a Defense Strategy of Plant Cells against Virus , 2008, PLoS pathogens.
[18] Anésia A. Santos,et al. The ribosomal protein L10/QM-like protein is a component of the NIK-mediated antiviral signaling. , 2008, Virology.
[19] Anésia A. Santos,et al. A novel nucleocytoplasmic traffic GTPase identified as a functional target of the bipartite geminivirus nuclear shuttle protein. , 2008, The Plant journal : for cell and molecular biology.
[20] F. Murilo Zerbini,et al. Six novel begomoviruses infecting tomato and associated weeds in Southeastern Brazil , 2008, Archives of Virology.
[21] A cautionary note on pathogen-derived sequences , 2008, Nature Biotechnology.
[22] E. C. Andrade,et al. Tomato yellow spot virus, a tomato-infecting begomovirus from Brazil with a closer relationship to viruses from Sida sp., forms pseudorecombinants with begomoviruses from tomato but not from Sida. , 2006, The Journal of general virology.
[23] M. C. Baracat-Pereira,et al. A PERK-Like Receptor Kinase Interacts with the Geminivirus Nuclear Shuttle Protein and Potentiates Viral Infection , 2006, Journal of Virology.
[24] W. J. Lucas,et al. Exploiting chinks in the plant's armor: evolution and emergence of geminiviruses. , 2005, Annual review of phytopathology.
[25] Anésia A. Santos,et al. The geminivirus nuclear shuttle protein is a virulence factor that suppresses transmembrane receptor kinase activity. , 2004, Genes & development.
[26] M. C. Baracat-Pereira,et al. Identification of a novel receptor-like protein kinase that interacts with a geminivirus nuclear shuttle protein. , 2004, Virology.
[27] E. Cheung,et al. A Novel Arabidopsis Acetyltransferase Interacts with the Geminivirus Movement Protein NSP Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.012120. , 2003, The Plant Cell Online.
[28] E. C. Andrade,et al. A naturally occurring recombinant DNA-A of a typical bipartite begomovirus does not require the cognate DNA-B to infect Nicotiana benthamiana systemically. , 2003, The Journal of general virology.
[29] B. Epel,et al. The role of host and viral proteins in intra- and inter-cellular trafficking of geminiviruses☆ , 2002 .
[30] S. Zhang,et al. Movement proteins (BC1 and BV1) of Abutilon mosaic geminivirus are cotransported in and between cells of sink but not of source leaves as detected by green fluorescent protein tagging. , 2001, Virology.
[31] S. Shiu,et al. Receptor-like kinases from Arabidopsis form a monophyletic gene family related to animal receptor kinases , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[32] B. Ward,et al. Nuclear Export in Plants: Use of Geminivirus Movement Proteins for a Cell-Based Export Assay , 1999, Plant Cell.
[33] R. Tavazza,et al. Resistance to tomato yellow leaf curl geminivirus in Nicotiana benthamiana plants transformed with a truncated viral C1 gene. , 1996, Virology.
[34] A. Sanderfoot,et al. Getting it together in plant virus movement: cooperative interactions between bipartite geminivirus movement proteins. , 1996, Trends in cell biology.
[35] A. Sanderfoot,et al. A Viral Movement Protein as a Nuclear Shuttle (The Geminivirus BR1 Movement Protein Contains Domains Essential for Interaction with BL1 and Nuclear Localization) , 1996, Plant physiology.
[36] Yiguo Hong,et al. Virus resistance in Nicotiana benthamiana conferred by African cassava mosaic virus replication-associated protein (AC1) transgene , 1996 .
[37] A. Sanderfoot,et al. Cooperation in Viral Movement: The Geminivirus BL1 Movement Protein Interacts with BR1 and Redirects It from the Nucleus to the Cell Periphery. , 1995, The Plant cell.
[38] D. Zamir,et al. Transgenic Tomato Plants Expressing the Tomato Yellow Leaf Curl Virus Capsid Protein are Resistant to the Virus , 1994, Bio/Technology.
[39] A. G. Day,et al. Expression of an antisense viral gene in transgenic tobacco confers resistance to the DNA virus tomato golden mosaic virus. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[40] T. Frischmuth,et al. Defective viral DNA ameliorates symptoms of geminivirus infection in transgenic plants. , 1990, Proceedings of the National Academy of Sciences of the United States of America.