Convergent energy and stress signaling.
暂无分享,去创建一个
[1] J. Sheen,et al. Expression and evolutionary features of the hexokinase gene family in Arabidopsis , 2008, Planta.
[2] Yves Gibon,et al. Global Transcript Levels Respond to Small Changes of the Carbon Status during Progressive Exhaustion of Carbohydrates in Arabidopsis Rosettes1[W][OA] , 2008, Plant Physiology.
[3] A. Good,et al. NAD(H)-dependent glutamate dehydrogenase is essential for the survival of Arabidopsis thaliana during dark-induced carbon starvation. , 2008, Journal of experimental botany.
[4] D. Inzé,et al. Mapping methyl jasmonate-mediated transcriptional reprogramming of metabolism and cell cycle progression in cultured Arabidopsis cells , 2008, Proceedings of the National Academy of Sciences.
[5] D. Hardie,et al. AMP-activated/SNF1 protein kinases: conserved guardians of cellular energy , 2007, Nature Reviews Molecular Cell Biology.
[6] David Carling,et al. Structural basis for AMP binding to mammalian AMP-activated protein kinase , 2007, Nature.
[7] M. Stitt,et al. Coordination of carbon supply and plant growth. , 2007, Plant, cell & environment.
[8] R. Sormani,et al. The Arabidopsis TOR kinase links plant growth, yield, stress resistance and mRNA translation , 2007, EMBO reports.
[9] Michael F. Covington,et al. Mechanical Stress Induces Biotic and Abiotic Stress Responses via a Novel cis-Element , 2007, PLoS genetics.
[10] Filip Rolland,et al. A central integrator of transcription networks in plant stress and energy signalling , 2007, Nature.
[11] Su-May Yu,et al. The SnRK1A Protein Kinase Plays a Key Role in Sugar Signaling during Germination and Seedling Growth of Rice[W] , 2007, The Plant Cell Online.
[12] D. Granot. Role of tomato hexose kinases. , 2007, Functional plant biology : FPB.
[13] H. Bohnert,et al. Integration of Arabidopsis thaliana stress-related transcript profiles, promoter structures, and cell-specific expression , 2007, Genome Biology.
[14] 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.
[15] Eun-Jeong Lee,et al. Glycosyl hydrolases of cell wall are induced by sugar starvation in Arabidopsis. , 2007, Plant & cell physiology.
[16] G. Jauh,et al. Transcriptomic adaptations in rice suspension cells under sucrose starvation , 2007, Plant Molecular Biology.
[17] S. Tabata,et al. Sugar-inducible expression of the nucleolin-1 gene of Arabidopsis thaliana and its role in ribosome synthesis, growth and development. , 2007, The Plant journal : for cell and molecular biology.
[18] B. Usadel,et al. Temporal responses of transcripts, enzyme activities and metabolites after adding sucrose to carbon-deprived Arabidopsis seedlings. , 2007, The Plant journal : for cell and molecular biology.
[19] J. Sheen,et al. Regulatory Functions of Nuclear Hexokinase1 Complex in Glucose Signaling , 2006, Cell.
[20] J. Avruch,et al. Insulin and amino-acid regulation of mTOR signaling and kinase activity through the Rheb GTPase , 2006, Oncogene.
[21] M. Kreis,et al. AKINβγ Contributes to SnRK1 Heterotrimeric Complexes and Interacts with Two Proteins Implicated in Plant Pathogen Resistance through Its KIS/GBD Sequence1 , 2006, Plant Physiology.
[22] A. Fernie,et al. The mitochondrial electron transfer flavoprotein complex is essential for survival of Arabidopsis in extended darkness. , 2006, The Plant journal : for cell and molecular biology.
[23] Joost T. van Dongen,et al. SNF1-related kinases allow plants to tolerate herbivory by allocating carbon to roots , 2006, Proceedings of the National Academy of Sciences.
[24] K. Shinozaki,et al. Crosstalk between abiotic and biotic stress responses: a current view from the points of convergence in the stress signaling networks. , 2006, Current opinion in plant biology.
[25] M. Peggie,et al. Phosphorylation and 14-3-3 binding of Arabidopsis trehalose-phosphate synthase 5 in response to 2-deoxyglucose. , 2006, The Plant journal : for cell and molecular biology.
[26] E. Baena-González,et al. Sugar sensing and signaling in plants: conserved and novel mechanisms. , 2006, Annual review of plant biology.
[27] D. Rouquié,et al. Large-Scale Analysis of mRNA Translation States during Sucrose Starvation in Arabidopsis Cells Identifies Cell Proliferation and Chromatin Structure as Targets of Translational Control1[W] , 2006, Plant Physiology.
[28] M. Menges,et al. The D-Type Cyclin CYCD3;1 Is Limiting for the G1-to-S-Phase Transition in Arabidopsis[W] , 2006, The Plant Cell Online.
[29] Caroline Smith,et al. Establishing glucose- and ABA-regulated transcription networks in Arabidopsis by microarray analysis and promoter classification using a Relevance Vector Machine. , 2006, Genome research.
[30] T. Anthony,et al. Coping with stress: eIF2 kinases and translational control. , 2006, Biochemical Society transactions.
[31] K. Yoshimoto,et al. Autophagy in Development and Stress Responses of Plants , 2006, Autophagy.
[32] W. Weschke,et al. Repressing the Expression of the SUCROSE NONFERMENTING-1-RELATED PROTEIN KINASE Gene in Pea Embryo Causes Pleiotropic Defects of Maturation Similar to an Abscisic Acid-Insensitive Phenotype1[W] , 2005, Plant Physiology.
[33] Yves Gibon,et al. Sugars and Circadian Regulation Make Major Contributions to the Global Regulation of Diurnal Gene Expression in Arabidopsis[W][OA] , 2005, The Plant Cell Online.
[34] A. Fernie,et al. The Critical Role of Arabidopsis Electron-Transfer Flavoprotein:Ubiquinone Oxidoreductase during Dark-Induced Starvationw⃞ , 2005, The Plant Cell Online.
[35] Kirk Czymmek,et al. Autophagy Regulates Programmed Cell Death during the Plant Innate Immune Response , 2005, Cell.
[36] Richard D Vierstra,et al. Autophagic recycling: lessons from yeast help define the process in plants. , 2005, Current opinion in plant biology.
[37] Vicky Buchanan-Wollaston,et al. Comparative transcriptome analysis reveals significant differences in gene expression and signalling pathways between developmental and dark/starvation-induced senescence in Arabidopsis. , 2005, The Plant journal : for cell and molecular biology.
[38] C. Kenyon. The Plasticity of Aging: Insights from Long-Lived Mutants , 2005, Cell.
[39] Gloria M Coruzzi,et al. Genome-wide patterns of carbon and nitrogen regulation of gene expression validate the combined carbon and nitrogen (CN)-signaling hypothesis in plants , 2004, Genome Biology.
[40] Marie Boudsocq,et al. Identification of Nine Sucrose Nonfermenting 1-related Protein Kinases 2 Activated by Hyperosmotic and Saline Stresses in Arabidopsis thaliana* , 2004, Journal of Biological Chemistry.
[41] J. Fisahn,et al. Adjustment of diurnal starch turnover to short days: depletion of sugar during the night leads to a temporary inhibition of carbohydrate utilization, accumulation of sugars and post-translational activation of ADP-glucose pyrophosphorylase in the following light period. , 2004, The Plant journal : for cell and molecular biology.
[42] Kazuo Shinozaki,et al. Arabidopsis Cys2/His2-Type Zinc-Finger Proteins Function as Transcription Repressors under Drought, Cold, and High-Salinity Stress Conditions1 , 2004, Plant Physiology.
[43] Shu-Hsing Wu,et al. Molecular events in senescing Arabidopsis leaves. , 2004, The Plant journal : for cell and molecular biology.
[44] Ashverya Laxmi,et al. Global Transcription Profiling Reveals Multiple Sugar Signal Transduction Mechanisms in Arabidopsis , 2004, The Plant Cell Online.
[45] Sang-Jin Kim,et al. Transcriptome Profiling of the Response of Arabidopsis Suspension Culture Cells to Suc Starvation1[w] , 2004, Plant Physiology.
[46] Sjef Smeekens,et al. A Conserved Upstream Open Reading Frame Mediates Sucrose-Induced Repression of Translation , 2004, The Plant Cell Online.
[47] H. Ronne,et al. Snf1‐related protein kinase 1 is needed for growth in a normal day–night light cycle , 2004, The EMBO journal.
[48] S. Rhee,et al. MAPMAN: a user-driven tool to display genomics data sets onto diagrams of metabolic pathways and other biological processes. , 2004, The Plant journal : for cell and molecular biology.
[49] D. Gong,et al. The SOS3 Family of Calcium Sensors and SOS2 Family of Protein Kinases in Arabidopsis1 , 2004, Plant Physiology.
[50] Z. Bánfalvi,et al. Functional diversity of potato SNF1-related kinases tested in Saccharomyces cerevisiae. , 2003, Gene.
[51] P. Geigenberger,et al. Evidence that SNF1-related kinase and hexokinase are involved in separate sugar-signalling pathways modulating post-translational redox activation of ADP-glucose pyrophosphorylase in potato tubers. , 2003, The Plant journal : for cell and molecular biology.
[52] M. Gribskov,et al. The Arabidopsis CDPK-SnRK Superfamily of Protein Kinases , 2003, Plant Physiology.
[53] Filip Rolland,et al. Role of the Arabidopsis Glucose Sensor HXK1 in Nutrient, Light, and Hormonal Signaling , 2003, Science.
[54] Linhui Hao,et al. Geminivirus AL2 and L2 Proteins Interact with and Inactivate SNF1 Kinase Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.009530. , 2003, The Plant Cell Online.
[55] A. Hinnebusch,et al. Translational control by TOR and TAP42 through dephosphorylation of eIF2alpha kinase GCN2. , 2003, Genes & development.
[56] M. Paul,et al. Molecular cloning of an arabidopsis homologue of GCN2, a protein kinase involved in co-ordinated response to amino acid starvation , 2003, Planta.
[57] R. McKibbin,et al. Antisense SNF1-related (SnRK1) protein kinase gene represses transient activity of an alpha-amylase (alpha-Amy2) gene promoter in cultured wheat embryos. , 2003, Journal of experimental botany.
[58] J. Wery,et al. High temperature and water deficit may reduce seed number in field pea purely by decreasing plant growth rate. , 2003, Functional plant biology : FPB.
[59] Yves Gibon,et al. Starch synthesis in potato tubers is regulated by post-translational redox modification of ADP-glucose pyrophosphorylase: a novel regulatory mechanism linking starch synthesis to the sucrose supply. , 2002, The Plant cell.
[60] F. Berger,et al. Expression and disruption of the Arabidopsis TOR (target of rapamycin) gene , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[61] Akira Watanabe,et al. Dark-inducible genes from Arabidopsis thaliana are associated with leaf senescence and repressed by sugars. , 2001, Physiologia plantarum.
[62] E. Lander,et al. Remodeling of yeast genome expression in response to environmental changes. , 2001, Molecular biology of the cell.
[63] James A. H. Murray,et al. Sugar Control of the Plant Cell Cycle: Differential Regulation of Arabidopsis D-Type Cyclin Gene Expression , 2000, Molecular and Cellular Biology.
[64] R. Bhalerao,et al. Functional identification of an Arabidopsis snf4 ortholog by screening for heterologous multicopy suppressors of snf4 deficiency in yeast. , 2000, The Plant journal : for cell and molecular biology.
[65] D. Toroser,et al. Regulation of a plant SNF1-related protein kinase by glucose-6-phosphate. , 2000, Plant physiology.
[66] Jonathan D. G. Jones,et al. Arabidopsis RelA/SpoT homologs implicate (p)ppGpp in plant signaling , 2000 .
[67] Su-May Yu,et al. Cellular and genetic responses of plants to sugar starvation. , 1999, Plant physiology.
[68] K. Browning,et al. Specific in vitro phosphorylation of plant eIF2α by eukaryotic eIF2α kinases , 1999, Plant Molecular Biology.
[69] D. Hardie,et al. Regulation of spinach SNF1-related (SnRK1) kinases by protein kinases and phosphatases is associated with phosphorylation of the T loop and is regulated by 5'-AMP. , 1999, The Plant journal : for cell and molecular biology.
[70] Nigel G Halford,et al. Two SNF1-related protein kinases from spinach leaf phosphorylate and inactivate 3-hydroxy-3-methylglutaryl-coenzyme A reductase, nitrate reductase, and sucrose phosphate synthase in vitro. , 1999, Plant physiology.
[71] R. Bhalerao,et al. Regulatory interaction of PRL1 WD protein with Arabidopsis SNF1-like protein kinases. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[72] T. Chiou,et al. Sucrose is a signal molecule in assimilate partitioning. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[73] Alison M. Smith,et al. Antisense expression of a sucrose non-fermenting-1-related protein kinase sequence in potato results in decreased expression of sucrose synthase in tubers and loss of sucrose-inducibility of sucrose synthase transcripts in leaves , 1998 .
[74] K. Koch. CARBOHYDRATE-MODULATED GENE EXPRESSION IN PLANTS. , 1996, Annual review of plant physiology and plant molecular biology.
[75] G. Coruzzi,et al. THE MOLECULAR-GENETICS OF NITROGEN ASSIMILATION INTO AMINO ACIDS IN HIGHER PLANTS. , 1996, Annual review of plant physiology and plant molecular biology.
[76] K. Takegawa,et al. AtVPS34, a phosphatidylinositol 3-kinase of Arabidopsis thaliana, is an essential protein with homology to a calcium-dependent lipid binding domain. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[77] M. Carlson,et al. SNF1/AMPK pathways in yeast. , 2008, Frontiers in bioscience : a journal and virtual library.
[78] S. McGee,et al. AMPK and transcriptional regulation. , 2008, Frontiers in bioscience : a journal and virtual library.
[79] C. Polge,et al. SNF1/AMPK/SnRK1 kinases, global regulators at the heart of energy control? , 2007, Trends in plant science.
[80] R. McKibbin,et al. Metabolic signalling and carbon partitioning: role of Snf1-related (SnRK1) protein kinase. , 2003, Journal of experimental botany.
[81] Z. Bánfalvi,et al. Antisense repression of StubGAL83 affects root and tuber development in potato. , 2003, The Plant journal : for cell and molecular biology.
[82] S. Hey,et al. Rothamsted Repository Download , 2022 .