Sugar-induced de novo cytokinin biosynthesis contributes to Arabidopsis growth under elevated CO2
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[1] G. Shaw. Chemistry of Adenine Cytokinins , 2019, Cytokinins.
[2] Mineko Konishi,et al. A NIGT1-centred transcriptional cascade regulates nitrate signalling and incorporates phosphorus starvation signals in Arabidopsis , 2018, Nature Communications.
[3] T. Kiba,et al. Systemic transport of trans-zeatin and its precursor have differing roles in Arabidopsis shoots , 2017, Nature Plants.
[4] H. Sakakibara,et al. Q&A: How do plants respond to cytokinins and what is their importance? , 2015, BMC Biology.
[5] S. Zhong,et al. Ethylene suppresses tomato (Solanum lycopersicum) fruit set through modification of gibberellin metabolism. , 2015, The Plant journal : for cell and molecular biology.
[6] J. Nemhauser,et al. New mechanistic links between sugar and hormone signalling networks. , 2015, Current opinion in plant biology.
[7] T. Schmülling,et al. Plant membrane assays with cytokinin receptors underpin the unique role of free cytokinin bases as biologically active ligands , 2015, Journal of experimental botany.
[8] Y. Ruan. Sucrose metabolism: gateway to diverse carbon use and sugar signaling. , 2014, Annual review of plant biology.
[9] T. Kiba,et al. Arabidopsis ABCG14 is essential for the root-to-shoot translocation of cytokinin , 2014, Proceedings of the National Academy of Sciences.
[10] C. Beveridge,et al. Sugar demand, not auxin, is the initial regulator of apical dominance , 2014, Proceedings of the National Academy of Sciences.
[11] E. Beck,et al. Influence of root-bed size on the response of tobacco to elevated CO2 as mediated by cytokinins , 2014, AoB PLANTS.
[12] M. Strnad,et al. Arabidopsis ABCG14 protein controls the acropetal translocation of root-synthesized cytokinins , 2014, Nature Communications.
[13] Hitoshi Sakakibara,et al. Plant responses to CO2: background and perspectives. , 2014, Plant & cell physiology.
[14] S. Yanagisawa,et al. High CO2 Triggers Preferential Root Growth of Arabidopsis thaliana Via Two Distinct Systems Under Low pH and Low N Stresses , 2014, Plant & cell physiology.
[15] L. Guglielminetti,et al. Ubiquitin Ligase ATL31 Functions in Leaf Senescence in Response to the Balance Between Atmospheric CO2 and Nitrogen Availability in Arabidopsis , 2014, Plant & cell physiology.
[16] Masae Konno,et al. Sites of Action of Elevated CO2 on Leaf Development in Rice: Discrimination between the Effects of Elevated CO2 and Nitrogen Deficiency , 2014, Plant & cell physiology.
[17] N. Nagata,et al. Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO2 Concentration , 2014, Plant & cell physiology.
[18] S. Yanagisawa,et al. Characterization of Metabolic States of Arabidopsis thaliana Under Diverse Carbon and Nitrogen Nutrient Conditions via Targeted Metabolomic Analysis , 2014, Plant & cell physiology.
[19] S. Maeda,et al. Effects of High CO2 on Growth and Metabolism of Arabidopsis Seedlings During Growth with a Constantly Limited Supply of Nitrogen , 2014, Plant & cell physiology.
[20] Ashverya Laxmi,et al. The interaction between glucose and cytokinin signal transduction pathway in Arabidopsis thaliana. , 2014, Plant, cell & environment.
[21] T. Kiba,et al. Side-chain modification of cytokinins controls shoot growth in Arabidopsis. , 2013, Developmental cell.
[22] M. Kojima,et al. Nitrogen-Dependent Regulation of De Novo Cytokinin Biosynthesis in Rice: The Role of Glutamine Metabolism as an Additional Signal , 2013, Plant & cell physiology.
[23] Fiona C. Robertson,et al. Photosynthetic entrainment of the Arabidopsis circadian clock , 2013, Nature.
[24] E. Nambara,et al. Interplay between Sucrose and Folate Modulates Auxin Signaling in Arabidopsis1[W][OA] , 2013, Plant Physiology.
[25] P. Schopfer,et al. Photosynthetic sucrose acts as cotyledon-derived long-distance signal to control root growth during early seedling development in Arabidopsis , 2012, Proceedings of the National Academy of Sciences.
[26] K. Shinozaki,et al. Cytokinins: metabolism and function in plant adaptation to environmental stresses. , 2012, Trends in plant science.
[27] K. Shinozaki,et al. Transcriptome Analyses of a Salt-Tolerant Cytokinin-Deficient Mutant Reveal Differential Regulation of Salt Stress Response by Cytokinin Deficiency , 2012, PloS one.
[28] G. Bassel,et al. Identification of reference genes for RT-qPCR expression analysis in Arabidopsis and tomato seeds. , 2012, Plant & cell physiology.
[29] T. Kiba,et al. Arabidopsis lonely guy (LOG) multiple mutants reveal a central role of the LOG-dependent pathway in cytokinin activation. , 2012, The Plant journal : for cell and molecular biology.
[30] V. Bajic,et al. The response and recovery of the Arabidopsis thaliana transcriptome to phosphate starvation , 2012, BMC Plant Biology.
[31] J. Chory,et al. Structural basis for cytokinin recognition by Arabidopsis thaliana histidine kinase 4 , 2011, Nature chemical biology.
[32] Hitoshi Sakakibara,et al. Phloem-Transported Cytokinin Regulates Polar Auxin Transport and Maintains Vascular Pattern in the Root Meristem , 2011, Current Biology.
[33] K. Shinozaki,et al. Analysis of Cytokinin Mutants and Regulation of Cytokinin Metabolic Genes Reveals Important Regulatory Roles of Cytokinins in Drought, Salt and Abscisic Acid Responses, and Abscisic Acid Biosynthesis[C][W] , 2011, Plant Cell.
[34] T. Kiba,et al. Hormonal control of nitrogen acquisition: roles of auxin, abscisic acid, and cytokinin. , 2011, Journal of experimental botany.
[35] Hitoshi Sakakibara,et al. Metabolism and long-distance translocation of cytokinins. , 2010, Journal of integrative plant biology.
[36] Y. Tsay,et al. CHL1 Functions as a Nitrate Sensor in Plants , 2009, Cell.
[37] Rongchen Wang,et al. A Genetic Screen for Nitrate Regulatory Mutants Captures the Nitrate Transporter Gene NRT1.11[W][OA] , 2009, Plant Physiology.
[38] M. Matsuoka,et al. Highly sensitive and high-throughput analysis of plant hormones using MS-probe modification and liquid chromatography-tandem mass spectrometry: an application for hormone profiling in Oryza sativa. , 2009, Plant & cell physiology.
[39] E. Reekie,et al. Why does elevated CO2 affect time of flowering? An exploratory study using the photoperiodic flowering mutants of Arabidopsis thaliana. , 2009, The New phytologist.
[40] J. Hejátko,et al. Effects of conditional IPT-dependent cytokinin overproduction on root architecture of Arabidopsis seedlings. , 2008, Plant & cell physiology.
[41] Laurence Lejay,et al. Oxidative Pentose Phosphate Pathway-Dependent Sugar Sensing as a Mechanism for Regulation of Root Ion Transporters by Photosynthesis1[W] , 2008, Plant Physiology.
[42] W. Gruissem,et al. Farnesylation Directs AtIPT3 Subcellular Localization and Modulates Cytokinin Biosynthesis in Arabidopsis1[OA] , 2008, Plant Physiology.
[43] Hitoshi Sakakibara,et al. Regulation of cytokinin biosynthesis, compartmentalization and translocation. , 2007, Journal of experimental botany.
[44] E. Bornberg-Bauer,et al. The AtGenExpress global stress expression data set: protocols, evaluation and model data analysis of UV-B light, drought and cold stress responses. , 2007, The Plant journal : for cell and molecular biology.
[45] Francesca Chiaromonte,et al. Qualitative network models and genome-wide expression data define carbon/nitrogen-responsive molecular machines in Arabidopsis , 2007, Genome Biology.
[46] G. Sandberg,et al. Roles of Arabidopsis ATP/ADP isopentenyltransferases and tRNA isopentenyltransferases in cytokinin biosynthesis , 2006, Proceedings of the National Academy of Sciences.
[47] M. Kawaguchi,et al. Long-distance signaling to control root nodule number. , 2006, Current opinion in plant biology.
[48] Jinxing Lin,et al. Elevated CO2 induces physiological, biochemical and structural changes in leaves of Arabidopsis thaliana. , 2006, The New phytologist.
[49] Hitoshi Sakakibara,et al. Cytokinins: activity, biosynthesis, and translocation. , 2006, Annual review of plant biology.
[50] M. Kojima,et al. Auxin controls local cytokinin biosynthesis in the nodal stem in apical dominance. , 2006, The Plant journal : for cell and molecular biology.
[51] T. Schmülling,et al. Arabidopsis Cytokinin Receptor Mutants Reveal Functions in Shoot Growth, Leaf Senescence, Seed Size, Germination, Root Development, and Cytokinin Metabolism[W] , 2005, The Plant Cell Online.
[52] P. Hedden,et al. KNOX Action in Arabidopsis Is Mediated by Coordinate Regulation of Cytokinin and Gibberellin Activities , 2005, Current Biology.
[53] G. Sandberg,et al. Arabidopsis KNOXI Proteins Activate Cytokinin Biosynthesis , 2005, Current Biology.
[54] M. Stitt,et al. Genome-Wide Identification and Testing of Superior Reference Genes for Transcript Normalization in Arabidopsis1[w] , 2005, Plant Physiology.
[55] Q. Qian,et al. Cytokinin Oxidase Regulates Rice Grain Production , 2005, Science.
[56] S. Kellomäki,et al. Stomatal density, anatomy and nutrient concentrations of Scots pine needles are affected by elevated CO2 and temperature , 2005 .
[57] Hitoshi Sakakibara,et al. Arabidopsis CYP735A1 and CYP735A2 Encode Cytokinin Hydroxylases That Catalyze the Biosynthesis of trans-Zeatin* , 2004, Journal of Biological Chemistry.
[58] T. Kuromori,et al. AtIPT3 is a key determinant of nitrate-dependent cytokinin biosynthesis in Arabidopsis. , 2004, Plant & cell physiology.
[59] Ari Pekka Mähönen,et al. In planta functions of the Arabidopsis cytokinin receptor family. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[60] S. Tabata,et al. Histidine Kinase Homologs That Act as Cytokinin Receptors Possess Overlapping Functions in the Regulation of Shoot and Root Growth in Arabidopsis , 2004, The Plant Cell Online.
[61] Tatsuo Kakimoto,et al. Expression of cytokinin biosynthetic isopentenyltransferase genes in Arabidopsis: tissue specificity and regulation by auxin, cytokinin, and nitrate. , 2004, The Plant journal : for cell and molecular biology.
[62] Miguel Cerezo,et al. Regulation of Root Ion Transporters by Photosynthesis: Functional Importance and Relation with Hexokinase Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.013516. , 2003, The Plant Cell Online.
[63] S. Tabata,et al. The type-A response regulator, ARR15, acts as a negative regulator in the cytokinin-mediated signal transduction in Arabidopsis thaliana. , 2003, Plant & cell physiology.
[64] L. Herrera-Estrella,et al. The role of nutrient availability in regulating root architecture. , 2003, Current opinion in plant biology.
[65] Michael Riefler,et al. Structure and function of cytokinin oxidase/dehydrogenase genes of maize, rice, Arabidopsis and other species , 2003, Journal of Plant Research.
[66] H. Sakakibara. Nitrate-specific and cytokinin-mediated nitrogen signaling pathways in plants , 2003, Journal of Plant Research.
[67] F. Miglietta,et al. Spatial and Temporal Effects of Free-Air CO2Enrichment (POPFACE) on Leaf Growth, Cell Expansion, and Cell Production in a Closed Canopy of Poplar1 , 2003, Plant Physiology.
[68] Hitoshi Sakakibara,et al. Regulation of sulfur-responsive gene expression by exogenously applied cytokinins in Arabidopsis thaliana. , 2002, Plant & cell physiology.
[69] Hendrik Poorter,et al. Avoiding bias in calculations of relative growth rate. , 2002, Annals of botany.
[70] L. Gan,et al. Responses of carboxylating enzymes, sucrose metabolizing enzymes and plant hormones in a tropical epiphytic CAM orchid to CO2 enrichment , 2002 .
[71] M. Mok,et al. CYTOKININ METABOLISM AND ACTION. , 2003, Annual review of plant physiology and plant molecular biology.
[72] T. Kakimoto. Identification of plant cytokinin biosynthetic enzymes as dimethylallyl diphosphate:ATP/ADP isopentenyltransferases. , 2001, Plant & cell physiology.
[73] H. Sakakibara,et al. Identification of Genes Encoding Adenylate Isopentenyltransferase, a Cytokinin Biosynthesis Enzyme, inArabidopsis thaliana * , 2001, The Journal of Biological Chemistry.
[74] H. Sakakibara,et al. Nitrogen-dependent accumulation of cytokinins in root and the translocation to leaf: implication of cytokinin species that induces gene expression of maize response regulator. , 2001, Plant & cell physiology.
[75] G. Farquhar,et al. Effects of elevated [CO(2)] and nitrogen nutrition on cytokinins in the xylem sap and leaves of cotton. , 2000, Plant physiology.
[76] G. Neumann,et al. Rapid effects of nitrogen form on leaf morphogenesis in tobacco. , 2000, Journal of experimental botany.
[77] J. M. Horgan,et al. Cytokinins and the Growth Responses of Seedlings of Betula pendula Roth. and Acer pseudoplatanus L. to Nitrogen and Phosphorus Deficiency , 1980 .
[78] P. Wareing,et al. Effects of Mineral Nutrition on Endogenous Cytokinins in Plants of Sunflower (Helianthus annuus L.) , 1979 .