A Sequence-Ready Physical Map of Barley Anchored Genetically by Two Million Single-Nucleotide Polymorphisms1[W][OPEN]
暂无分享,去创建一个
Axel Himmelbach | Uwe Scholz | Gary J. Muehlbauer | Matthias Platzer | Peter Langridge | Thomas Nussbaumer | Martin Mascher | Andreas Graner | Heidrun Gundlach | Marius Felder | Robbie Waugh | Burkhard Steuernagel | Zeev Frenkel | Nils Stein | Pete E. Hedley | P. Langridge | M. Platzer | S. Taudien | K. Mayer | H. Gundlach | A. Graner | P. Hedley | R. Waugh | B. Steuernagel | U. Scholz | T. Nussbaumer | Z. Frenkel | A. Korol | A. Himmelbach | G. Muehlbauer | M. Mascher | N. Stein | Ruonan Zhou | Marius Felder | T. Schmutzer | Abraham Korol | Ruvini Ariyadasa | Daniela Schulte | Naser Poursarebani | Ruonan Zhou | Stefan Taudien | Thomas Schmutzer | Klaus F.X. Mayer | R. Ariyadasa | D. Schulte | N. Poursarebani | Thomas Schmutzer
[1] L. Yan,et al. The wheat and barley vernalization gene VRN3 is an orthologue of FT , 2006, Proceedings of the National Academy of Sciences.
[2] B. Williams,et al. An Integrated Physical and Genetic Map of the Rice Genome , 2002, The Plant Cell Online.
[3] Dawn H. Nagel,et al. The B73 Maize Genome: Complexity, Diversity, and Dynamics , 2009, Science.
[4] D. Kudrna,et al. The stem rust resistance gene Rpg5 encodes a protein with nucleotide-binding-site, leucine-rich, and protein kinase domains , 2008, Proceedings of the National Academy of Sciences.
[5] Pierre Sourdille,et al. A Physical Map of the 1-Gigabase Bread Wheat Chromosome 3B , 2008, Science.
[6] Bin Han,et al. Resequencing rice genomes: an emerging new era of rice genomics. , 2013, Trends in genetics : TIG.
[7] Y. Gu,et al. High-Resolution Radiation Hybrid Map of Wheat Chromosome 1D , 2006, Genetics.
[8] Ali Masoudi-Nejad,et al. An alternative to radiation hybrid mapping for large-scale genome analysis in barley , 2005, Molecular Genetics and Genomics.
[9] Abraham B. Korol,et al. LTC: a novel algorithm to improve the efficiency of contig assembly for physical mapping in complex genomes , 2010, BMC Bioinformatics.
[10] Mouse Genome Sequencing Consortium. Initial sequencing and comparative analysis of the mouse genome , 2002, Nature.
[11] International Human Genome Sequencing Consortium. Initial sequencing and analysis of the human genome , 2001, Nature.
[12] A. Gnirke,et al. High-quality draft assemblies of mammalian genomes from massively parallel sequence data , 2010, Proceedings of the National Academy of Sciences.
[13] Yadan Luo,et al. Aegilops tauschii draft genome sequence reveals a gene repertoire for wheat adaptation , 2013, Nature.
[14] M. Platzer,et al. Sequencing of BAC pools by different next generation sequencing platforms and strategies , 2011, BMC Research Notes.
[15] T. Komatsuda,et al. Cleistogamous flowering in barley arises from the suppression of microRNA-guided HvAP2 mRNA cleavage , 2009, Proceedings of the National Academy of Sciences.
[16] P. Schulze-Lefert,et al. A Novel Class of Eukaryotic Zinc-Binding Proteins Is Required for Disease Resistance Signaling in Barley and Development in C. elegans , 1999, Cell.
[17] Wenlong Yang,et al. Draft genome of the wheat A-genome progenitor Triticum urartu , 2013, Nature.
[18] Mihaela M. Martis,et al. Frequent Gene Movement and Pseudogene Evolution Is Common to the Large and Complex Genomes of Wheat, Barley, and Their Relatives[W][OA] , 2011, Plant Cell.
[19] Francois Sabot,et al. Low-pass shotgun sequencing of the barley genome facilitates rapid identification of genes, conserved non-coding sequences and novel repeats , 2008, BMC Genomics.
[20] F. Menting,et al. Chapter 12 – Diversity in ex situ genebank collections of barley , 2003 .
[21] Robert J. Elshire,et al. A Robust, Simple Genotyping-by-Sequencing (GBS) Approach for High Diversity Species , 2011, PloS one.
[22] J. Poland,et al. Development of High-Density Genetic Maps for Barley and Wheat Using a Novel Two-Enzyme Genotyping-by-Sequencing Approach , 2012, PloS one.
[23] William T B Thomas,et al. INTERMEDIUM-C, a modifier of lateral spikelet fertility in barley, is an ortholog of the maize domestication gene TEOSINTE BRANCHED 1 , 2011, Nature Genetics.
[24] E. Myers,et al. Basic local alignment search tool. , 1990, Journal of molecular biology.
[25] Hans Lehrach,et al. Palaeohexaploid ancestry for Caryophyllales inferred from extensive gene-based physical and genetic mapping of the sugar beet genome (Beta vulgaris). , 2012, The Plant journal : for cell and molecular biology.
[26] Erich Kombrink,et al. SNARE-protein-mediated disease resistance at the plant cell wall , 2003, Nature.
[27] David C. Schwartz,et al. A Single Molecule Scaffold for the Maize Genome , 2009, PLoS genetics.
[28] M. Morgante,et al. Genetic Dissection of Barley Morphology and Development1[W][OA] , 2010, Plant Physiology.
[29] J. Chapman,et al. Anchoring and ordering NGS contig assemblies by population sequencing (POPSEQ) , 2013, The Plant journal : for cell and molecular biology.
[30] A. Graner,et al. The eukaryotic translation initiation factor 4E confers multiallelic recessive Bymovirus resistance in Hordeum vulgare (L.). , 2005, The Plant journal : for cell and molecular biology.
[31] C. Soderlund,et al. Contigs built with fingerprints, markers, and FPC V4.7. , 2000, Genome research.
[32] J. Tomkins,et al. Complete chloroplast genome sequences of Hordeum vulgare, Sorghum bicolor and Agrostis stolonifera, and comparative analyses with other grass genomes , 2007, Theoretical and Applied Genetics.
[33] P. Langridge,et al. The International Barley Sequencing Consortium—At the Threshold of Efficient Access to the Barley Genome1[W] , 2009, Plant Physiology.
[34] P. Langridge,et al. Boron-Toxicity Tolerance in Barley Arising from Efflux Transporter Amplification , 2007, Science.
[35] P. Schulze-Lefert,et al. Recognition Specificity and RAR1/SGT1 Dependence in Barley Mla Disease Resistance Genes to the Powdery Mildew Fungus Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.009258. , 2003, The Plant Cell Online.
[36] M. Feldman,et al. The Impact of Polyploidy on Grass Genome Evolution , 2002, Plant Physiology.
[37] C. Feuillet,et al. Integrating cereal genomics to support innovation in the Triticeae , 2012, Functional & Integrative Genomics.
[38] The Arabidopsis Genome Initiative. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana , 2000, Nature.
[39] Takuji Sasaki,et al. The map-based sequence of the rice genome , 2005, Nature.
[40] Timothy J. Close,et al. An improved method to identify BAC clones using pooled overgos , 2006, Nucleic acids research.
[41] Haibao Tang,et al. A draft physical map of a D-genome cotton species (Gossypium raimondii) , 2010, BMC Genomics.
[42] Andreas Graner,et al. A detailed look at 7 million years of genome evolution in a 439 kb contiguous sequence at the barley Hv-eIF4E locus: recombination, rearrangements and repeats. , 2004, The Plant journal : for cell and molecular biology.
[43] Andreas Graner,et al. Six-rowed barley originated from a mutation in a homeodomain-leucine zipper I-class homeobox gene , 2007, Proceedings of the National Academy of Sciences.
[44] Carolyn Thomas,et al. High-throughput fingerprinting of bacterial artificial chromosomes using the snapshot labeling kit and sizing of restriction fragments by capillary electrophoresis. , 2003, Genomics.
[45] Uwe Scholz,et al. De novo 454 sequencing of barcoded BAC pools for comprehensive gene survey and genome analysis in the complex genome of barley , 2009 .
[46] Lukas Wagner,et al. A Greedy Algorithm for Aligning DNA Sequences , 2000, J. Comput. Biol..
[47] Andreas Graner,et al. 454 sequencing put to the test using the complex genome of barley , 2006, BMC Genomics.
[48] D. Laurie,et al. The Pseudo-Response Regulator Ppd-H1 Provides Adaptation to Photoperiod in Barley , 2005, Science.
[49] G. Chena,et al. Cleistogamous fl owering in barley arises from the suppression of microRNA-guided HvAP 2 mRNA cleavage , 2010 .
[50] Paul D. Shaw,et al. Natural variation in a homolog of Antirrhinum CENTRORADIALIS contributed to spring growth habit and environmental adaptation in cultivated barley , 2012, Nature Genetics.
[51] G. Muehlbauer,et al. The barley UNICULM2 gene resides in a centromeric region and may be associated with signaling and stress responses , 2013, Functional & Integrative Genomics.
[52] G. Presting,et al. High-resolution pachytene chromosome mapping of bacterial artificial chromosomes anchored by genetic markers reveals the centromere location and the distribution of genetic recombination along chromosome 10 of rice. , 2001, Genetics.
[53] H. Kanamori,et al. Barley grain with adhering hulls is controlled by an ERF family transcription factor gene regulating a lipid biosynthesis pathway , 2008, Proceedings of the National Academy of Sciences.
[54] R. Wing,et al. A bacterial artificial chromosome library for barley (Hordeum vulgare L.) and the identification of clones containing putative resistance genes , 2000, Theoretical and Applied Genetics.
[55] M. Wolter,et al. The Barley Mlo Gene: A Novel Control Element of Plant Pathogen Resistance , 1997, Cell.
[56] P. Langridge,et al. BAC library resources for map-based cloning and physical map construction in barley (Hordeum vulgare L.) , 2011, BMC Genomics.
[57] R. Brueggeman,et al. The barley serine/threonine kinase gene Rpg1 providing resistance to stem rust belongs to a gene family with five other members encoding kinase domains , 2006, Theoretical and Applied Genetics.
[58] 李佩芳. International Rice Genome Sequencing Project. 2005. The map-based sequence of the rice genome. , 2005 .
[59] Mihaela M. Martis,et al. A physical, genetic and functional sequence assembly of the barley genome. , 2022 .