Tandem Duplication Events in the Expansion of the Small Heat Shock Protein Gene Family in Solanum lycopersicum (cv. Heinz 1706)
暂无分享,去创建一个
[1] S. Mirarab,et al. Sequence Analysis , 2020, Encyclopedia of Bioinformatics and Computational Biology.
[2] Rafael A. Irizarry,et al. quantro: a data-driven approach to guide the choice of an appropriate normalization method , 2015, Genome Biology.
[3] Michael J E Sternberg,et al. The Phyre2 web portal for protein modeling, prediction and analysis , 2015, Nature Protocols.
[4] E. Schleiff,et al. Chaperone network composition in Solanum lycopersicum explored by transcriptome profiling and microarray meta-analysis. , 2015, Plant, cell & environment.
[5] Chuan He,et al. Fate by RNA methylation: m6A steers stem cell pluripotency , 2015, Genome Biology.
[6] B. Tjaden,et al. De novo assembly of bacterial transcriptomes from RNA-seq data , 2015, Genome Biology.
[7] Jonathan D. G. Jones,et al. Defining the full tomato NB-LRR resistance gene repertoire using genomic and cDNA RenSeq , 2014, BMC Plant Biology.
[8] N. Sreenivasulu,et al. Unraveling Regulation of the Small Heat Shock Proteins by the Heat Shock Factor HvHsfB2c in Barley: Its Implications in Drought Stress Response and Seed Development , 2014, PloS one.
[9] Sinnakaruppan Mathavan,et al. Normalization of RNA-Sequencing Data from Samples with Varying mRNA Levels , 2014, PloS one.
[10] R. D'Alessandro,et al. Patchwork sequencing of tomato San Marzano and Vesuviano varieties highlights genome-wide variations , 2014, BMC Genomics.
[11] S. Xiao,et al. Phosphoproteomic analysis of chromoplasts from sweet orange during fruit ripening. , 2014, Physiologia plantarum.
[12] Koichiro Tamura,et al. MEGA6: Molecular Evolutionary Genetics Analysis version 6.0. , 2013, Molecular biology and evolution.
[13] E. López-Juez,et al. Biogenesis and homeostasis of chloroplasts and other plastids , 2013, Nature Reviews Molecular Cell Biology.
[14] Ge Gao,et al. Systematically profiling and annotating long intergenic non-coding RNAs in human embryonic stem cell , 2013, BMC Genomics.
[15] A. Nepomuceno,et al. Genome-wide analysis of the Hsp20 gene family in soybean: comprehensive sequence, genomic organization and expression profile analysis under abiotic and biotic stresses , 2013, BMC Genomics.
[16] J. Harrow,et al. Transcriptome analysis of human tissues and cell lines reveals one dominant transcript per gene , 2013, Genome Biology.
[17] S. Howell. Endoplasmic reticulum stress responses in plants. , 2013, Annual review of plant biology.
[18] A. Toyoda,et al. Functional genomics of tomato in a post-genome-sequencing phase , 2013, Breeding science.
[19] I. Rigoutsos,et al. The complex transcriptional landscape of the anucleate human platelet , 2013, BMC Genomics.
[20] Daniel W. A. Buchan,et al. The tomato genome sequence provides insights into fleshy fruit evolution , 2012, Nature.
[21] Je-Gun Joung,et al. Combined transcriptome, genetic diversity and metabolite profiling in tomato fruit reveals that the ethylene response factor SlERF6 plays an important role in ripening and carotenoid accumulation. , 2012, The Plant journal : for cell and molecular biology.
[22] Heather A. O'Neill,et al. Small heat shock proteins and α-crystallins: dynamic proteins with flexible functions. , 2012, Trends in biochemical sciences.
[23] A. ten Have,et al. Evolution and functional diversification of the small heat shock protein/α-crystallin family in higher plants , 2011, Planta.
[24] P. Walter,et al. The Unfolded Protein Response: From Stress Pathway to Homeostatic Regulation , 2011, Science.
[25] L. Ponnala,et al. Tissue- and Cell-Type Specific Transcriptome Profiling of Expanding Tomato Fruit Provides Insights into Metabolic and Regulatory Specialization and Cuticle Formation[W][OA] , 2011, Plant Cell.
[26] J. Giovannoni,et al. Features of a unique intronless cluster of class I small heat shock protein genes in tandem with box C/D snoRNA genes on chromosome 6 in tomato (Solanum lycopersicum) , 2011, Planta.
[27] Varodom Charoensawan,et al. RNA sequencing reveals two major classes of gene expression levels in metazoan cells , 2011, Molecular systems biology.
[28] C. Emanuelsson,et al. Subunit arrangement in the dodecameric chloroplast small heat shock protein Hsp21 , 2011, Protein science : a publication of the Protein Society.
[29] A. Mattoo,et al. Maturity and ripening-stage specific modulation of tomato (Solanum lycopersicum) fruit transcriptome , 2010, GM crops.
[30] Jean-Christophe Gelly,et al. Detection and Architecture of Small Heat Shock Protein Monomers , 2010, PloS one.
[31] A. B. Carvalho,et al. Functional Copies of the Mst77F Gene on the Y Chromosome of Drosophila melanogaster , 2010, Genetics.
[32] Davis J. McCarthy,et al. edgeR: a Bioconductor package for differential expression analysis of digital gene expression data , 2009, Bioinform..
[33] E. Pressman,et al. Transcriptional profiling of maturing tomato (Solanum lycopersicum L.) microspores reveals the involvement of heat shock proteins, ROS scavengers, hormones, and sugars in the heat stress response , 2009, Journal of experimental botany.
[34] Pablo Librado,et al. DnaSP v5: a software for comprehensive analysis of DNA polymorphism data , 2009, Bioinform..
[35] Y. Ouyang,et al. Comprehensive sequence and expression profile analysis of Hsp20 gene family in rice , 2009, Plant Molecular Biology.
[36] A. A. Borges,et al. Selection of internal control genes for quantitative real-time RT-PCR studies during tomato development process , 2008, BMC Plant Biology.
[37] Chenwu Xu,et al. Genomewide comparative phylogenetic and molecular evolutionary analysis of tubby-like protein family in Arabidopsis, rice, and poplar. , 2008, Genomics.
[38] David S. Wishart,et al. PROTEUS2: a web server for comprehensive protein structure prediction and structure-based annotation , 2008, Nucleic Acids Res..
[39] Andrew H. Paterson,et al. Synteny and Collinearity in Plant Genomes , 2008, Science.
[40] A. Bergman,et al. The limits of subfunctionalization , 2007, BMC Evolutionary Biology.
[41] Rodrigo Lopez,et al. Clustal W and Clustal X version 2.0 , 2007, Bioinform..
[42] M. Shono,et al. Constitutive expression of an endoplasmic reticulum small heat shock protein alleviates endoplasmic reticulum stress in transgenic tomato. , 2007, Journal of plant physiology.
[43] Deyou Zheng,et al. The ambiguous boundary between genes and pseudogenes: the dead rise up, or do they? , 2007, Trends in genetics : TIG.
[44] Csaba Pal,et al. Differential impact of simultaneous migration on coevolving hosts and parasites , 2007, BMC Evolutionary Biology.
[45] M. Causse,et al. Major Proteome Variations Associated with Cherry Tomato Pericarp Development and Ripening[OA] , 2007, Plant Physiology.
[46] G. Martin,et al. Transcriptome and Selected Metabolite Analyses Reveal Multiple Points of Ethylene Control during Tomato Fruit Developmentw⃞ , 2005, The Plant Cell Online.
[47] Tal Isaacson,et al. Dual Role for Tomato Heat Shock Protein 21: Protecting Photosystem II from Oxidative Stress and Promoting Color Changes during Fruit Maturation , 2005, The Plant Cell Online.
[48] Jianzhi Zhang,et al. Rapid Subfunctionalization Accompanied by Prolonged and Substantial Neofunctionalization in Duplicate Gene Evolution , 2005, Genetics.
[49] P. Hatzopoulos,et al. Tight regulation of expression of two Arabidopsis cytosolic Hsp90 genes during embryo development , 2005 .
[50] Kapil Bharti,et al. Heat stress response in plants: a complex game with chaperones and more than twenty heat stress transcription factors , 2004, Journal of Biosciences.
[51] Zhangjun Fei,et al. Comprehensive EST analysis of tomato and comparative genomics of fruit ripening. , 2004, The Plant journal : for cell and molecular biology.
[52] Steven B Cannon,et al. The roles of segmental and tandem gene duplication in the evolution of large gene families in Arabidopsis thaliana , 2004, BMC Plant Biology.
[53] B. Lahner,et al. Production of Se-methylselenocysteine in transgenic plants expressing selenocysteine methyltransferase , 2004, BMC Plant Biology.
[54] Katsumi Suzuki,et al. Mitochondrial small heat‐shock protein enhances thermotolerance in tobacco plants , 2004, FEBS letters.
[55] W. Ramakrishna,et al. A Novel Small Heat Shock Protein Gene, vis1, Contributes to Pectin Depolymerization and Juice Viscosity in Tomato Fruit1 , 2003, Plant Physiology.
[56] E. Vierling,et al. The expanding family of Arabidopsis thaliana small heat stress proteins and a new family of proteins containing α-crystallin domains (Acd proteins) , 2001, Cell stress & chaperones.
[57] J. Giovannoni,et al. MOLECULAR BIOLOGY OF FRUIT MATURATION AND RIPENING. , 2001, Annual review of plant physiology and plant molecular biology.
[58] R. R. Samaha,et al. Arabidopsis transcription factors: genome-wide comparative analysis among eukaryotes. , 2000, Science.
[59] L. Nover,et al. Cytosolic heat-stress proteins Hsp17.7 class I and Hsp17.3 class II of tomato act as molecular chaperones in vivo , 2000, Planta.
[60] S. Brunak,et al. Predicting subcellular localization of proteins based on their N-terminal amino acid sequence. , 2000, Journal of molecular biology.
[61] D. Botstein,et al. Cluster analysis and display of genome-wide expression patterns. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[62] J. Leunissen,et al. Genealogy of the α-crystallin—small heat-shock protein superfamily , 1998 .
[63] S. Lawrence,et al. Chromoplast development in ripening tomato fruit: identification of cDNAs for chromoplast-targeted proteins and characterization of a cDNA encoding a plastid-localized low-molecular-weight heat shock protein , 1997, Plant Molecular Biology.
[64] Garrett J. Lee,et al. Evolution, structure and function of the small heat shock proteins in plants , 1996 .
[65] E. Waters. The molecular evolution of the small heat-shock proteins in plants. , 1995, Genetics.
[66] J. Bull,et al. An Empirical Test of Bootstrapping as a Method for Assessing Confidence in Phylogenetic Analysis , 1993 .
[67] R. T. Nagao,et al. Localization of small heat shock proteins to the higher plant endomembrane system , 1993, Molecular and cellular biology.
[68] P. LaFayette,et al. Soluble and membrane-associated heat shock proteins in soybean root , 1990, Protoplasma.
[69] L. Sticher,et al. Heat Shock Inhibits alpha-Amylase Synthesis in Barley Aleurone without Inhibiting the Activity of Endoplasmic Reticulum Marker Enzymes. , 1990, Plant physiology.
[70] Dr. Susumu Ohno. Evolution by Gene Duplication , 1970, Springer Berlin Heidelberg.
[71] Julio A. Rozas Liras,et al. DnaSP v 5 : a software for comprehensive analysis of DNA polymorphism data , 2009 .
[72] E. Vierling,et al. The plant sHSP superfamily: five new members in Arabidopsis thaliana with unexpected properties , 2008, Cell Stress and Chaperones.
[73] E. Waters,et al. Comparative analysis of the small heat shock proteins in three angiosperm genomes identifies new subfamilies and reveals diverse evolutionary patterns , 2008, Cell Stress and Chaperones.
[74] A. Force,et al. The probability of duplicate gene preservation by subfunctionalization. , 2000, Genetics.
[75] E. Vierling,et al. The diversification of plant cytosolic small heat shock proteins preceded the divergence of mosses. , 1999, Molecular biology and evolution.
[76] J. Leunissen,et al. Genealogy of the alpha-crystallin--small heat-shock protein superfamily. , 1998, International journal of biological macromolecules.
[77] D. Delmer,et al. Annual review of plant physiology and plant molecular biology , 1988 .