Global reprogramming of transcription and metabolism in Medicago truncatula during progressive drought and after rewatering
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Yuhong Tang | Lloyd W Sumner | D. Huhman | L. Sumner | Yuhong Tang | M. Udvardi | J. Murray | I. Torres-Jerez | S. Allen | M. H. Cruz de Carvalho | Yun Kang | Stacy N Allen | Jiyi Zhang | Ivone Torres-Jerez | Michael K Udvardi | David V Huhman | Yun Kang | Ji-Yi Zhang | Maria H Cruz de Carvalho | Jeremy Murray
[1] S. Araújo,et al. Physiological responses of the legume model Medicago truncatula cv. Jemalong to water deficit , 2008 .
[2] D. Lawlor,et al. Causes of Decreased Photosynthetic Rate and Metabolic Capacity in Water-deficient Leaf Cells: a Critical Evaluation of Mechanisms and Integration of Processes , 1996 .
[3] Angela Sample,et al. Molecular tailoring of farnesylation for plant drought tolerance and yield protection. , 2005, The Plant journal : for cell and molecular biology.
[4] K. Akashi,et al. The long-term responses of the photosynthetic proton circuit to drought. , 2009, Plant, cell & environment.
[5] R. E. Sharp,et al. Plants under Stress: Regulation of growth and development of plants growing with a restricted supply of water , 1989 .
[6] B. Roe,et al. Sequencing the Genespaces of Medicago truncatula and Lotus japonicus1 , 2005, Plant Physiology.
[7] G. Stacey,et al. “Translational” Legume Biology. Models to Crops , 2005, Plant Physiology.
[8] Kazuo Shinozaki,et al. Regulatory metabolic networks in drought stress responses. , 2007, Current opinion in plant biology.
[9] F. Rijsberman,et al. More Crop Per Drop , 2007 .
[10] Corey D Broeckling,et al. Overexpression of WXP1, a putative Medicago truncatula AP2 domain-containing transcription factor gene, increases cuticular wax accumulation and enhances drought tolerance in transgenic alfalfa (Medicago sativa). , 2005, The Plant journal : for cell and molecular biology.
[11] M. H. Cruz de Carvalho. Drought stress and reactive oxygen species: Production, scavenging and signaling. , 2008, Plant signaling & behavior.
[12] Ghasem Hosseini Salekdeh,et al. Conceptual framework for drought phenotyping during molecular breeding. , 2009, Trends in plant science.
[13] A. Oppenheim,et al. The Thylakoid FtsH Protease Plays a Role in the Light-Induced Turnover of the Photosystem II D1 Protein , 2000, Plant Cell.
[14] K. Shinozaki,et al. 'Omics' analyses of regulatory networks in plant abiotic stress responses. , 2010, Current opinion in plant biology.
[15] R. Dixon,et al. Metabolic profiling of Medicago truncatula cell cultures reveals the effects of biotic and abiotic elicitors on metabolism. , 2005, Journal of experimental botany.
[16] K. Shinozaki,et al. Monitoring Expression Profiles of Rice Genes under Cold, Drought, and High-Salinity Stresses and Abscisic Acid Application Using cDNA Microarray and RNA Gel-Blot Analyses1[w] , 2003, Plant Physiology.
[17] K. Shinozaki,et al. Two Transcription Factors, DREB1 and DREB2, with an EREBP/AP2 DNA Binding Domain Separate Two Cellular Signal Transduction Pathways in Drought- and Low-Temperature-Responsive Gene Expression, Respectively, in Arabidopsis , 1998, Plant Cell.
[18] K. Shinozaki,et al. Gene Expression and Signal Transduction in Water-Stress Response , 1997, Plant physiology.
[19] P. Verslues,et al. Essential Role of Tissue-Specific Proline Synthesis and Catabolism in Growth and Redox Balance at Low Water Potential1[W][OA] , 2011, Plant Physiology.
[20] D. H. Sanchez,et al. Physiological and biotechnological implications of transcript-level variation under abiotic stress. , 2013, Plant biology.
[21] Roberto Tuberosa,et al. Genomics-based approaches to improve drought tolerance of crops. , 2006, Trends in plant science.
[22] Kazuo Shinozaki,et al. Transcriptional regulatory networks in cellular responses and tolerance to dehydration and cold stresses. , 2006, Annual review of plant biology.
[23] N. Michele Holbrook,et al. Stomatal Closure during Leaf Dehydration, Correlation with Other Leaf Physiological Traits1 , 2003, Plant Physiology.
[24] R. Creelman,et al. From Laboratory to Field. Using Information from Arabidopsis to Engineer Salt, Cold, and Drought Tolerance in Crops1 , 2004, Plant Physiology.
[25] R. Valluru,et al. Myo-inositol and beyond--emerging networks under stress. , 2011, Plant science : an international journal of experimental plant biology.
[26] S. Cutler,et al. Modulation of drought resistance by the abscisic acid receptor PYL5 through inhibition of clade A PP2Cs. , 2009, The Plant journal : for cell and molecular biology.
[27] Kevin F. Smith,et al. Comparison of genome structure between white clover and Medicago truncatula supports homoeologous group nomenclature based on conserved synteny. , 2008, Genome.
[28] T. Ellis,et al. Comparative mapping between Medicago sativa and Pisum sativum , 2004, Molecular Genetics and Genomics.
[29] Jian-Kang Zhu,et al. Salt and drought stress signal transduction in plants. , 2002, Annual review of plant biology.
[30] James G. Thomson,et al. Plant defensins , 2009, Plant signaling & behavior.
[31] C. Vance,et al. Legumes: Importance and Constraints to Greater Use , 2003, Plant Physiology.
[32] E. Bray. Molecular Responses to Water Deficit , 1993, Plant physiology.
[33] K. Shinozaki,et al. Gene networks involved in drought stress response and tolerance. , 2006, Journal of experimental botany.
[34] Oliver Yu,et al. Transcriptional analysis of highly syntenic regions between Medicago truncatula and Glycine max using tiling microarrays , 2008, Genome Biology.
[35] M. Sussman,et al. Analysis of the Arabidopsis Histidine Kinase ATHK1 Reveals a Connection between Vegetative Osmotic Stress Sensing and Seed Maturation[W][OA] , 2008, The Plant Cell Online.
[36] E. Stockinger,et al. Arabidopsis thaliana CBF1 encodes an AP2 domain-containing transcriptional activator that binds to the C-repeat/DRE, a cis-acting DNA regulatory element that stimulates transcription in response to low temperature and water deficit. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[37] E. Bray. Plant responses to water deficit , 1997 .
[38] Alvaro J. González,et al. The Medicago Genome Provides Insight into the Evolution of Rhizobial Symbioses , 2011, Nature.
[39] S. Tabata,et al. Legume Anchor Markers Link Syntenic Regions Between Phaseolus vulgaris, Lotus japonicus, Medicago truncatula and Arachis , 2008, Genetics.
[40] A. Kaplan,et al. Molecular and biochemical mechanisms associated with dormancy and drought tolerance in the desert legume Retama raetam. , 2002, The Plant journal : for cell and molecular biology.
[41] G. May,et al. Medicago truncatula EST-SSRs reveal cross-species genetic markers for Medicago spp. , 2004, Theoretical and Applied Genetics.
[42] H. Nguyen,et al. Understanding regulatory networks and engineering for enhanced drought tolerance in plants. , 2006, Current opinion in plant biology.
[43] A. Savouré,et al. Proline: a multifunctional amino acid. , 2010, Trends in plant science.
[44] Hur-Song Chang,et al. Expression profiling of rice segregating for drought tolerance QTLs using a rice genome array , 2005, Functional & Integrative Genomics.
[45] J. Hanan,et al. A Standardized Method for Analysis of Medicago truncatula Phenotypic Development1[W][OA] , 2006, Plant Physiology.
[46] J. Boyer. Plant Productivity and Environment , 1982, Science.
[47] A. Ramachandra Reddy,et al. Drought-induced responses of photosynthesis and antioxidant metabolism in higher plants. , 2004, Journal of plant physiology.
[48] Yuhong Tang,et al. Physiological, biochemical and molecular responses to a combination of drought and ozone in Medicago truncatula. , 2013, Plant, cell & environment.
[49] A. Bacic,et al. Abiotic Stress Tolerance in Grasses. From Model Plants to Crop Plants , 2005, Plant Physiology.
[50] L. Xiong,et al. Overexpressing a NAM, ATAF, and CUC (NAC) transcription factor enhances drought resistance and salt tolerance in rice , 2006, Proceedings of the National Academy of Sciences.
[51] N. Buhot,et al. Transcriptional regulation of proline biosynthesis in Medicago truncatula reveals developmental and environmental specific features. , 2004, Physiologia plantarum.
[52] R. Canales,et al. Plant nuclear factor Y (NF-Y) B subunits confer drought tolerance and lead to improved corn yields on water-limited acres , 2007, Proceedings of the National Academy of Sciences.
[53] O. Fiehn,et al. Metabolite profiling for plant functional genomics , 2000, Nature Biotechnology.
[54] J. Hofer,et al. Legume Transcription Factors: Global Regulators of Plant Development and Response to the Environment1[W] , 2007, Plant Physiology.
[55] G. Jiang,et al. An expressed sequence tag SSR map of tetraploid alfalfa (Medicago sativa L.) , 2005, Theoretical and Applied Genetics.
[56] L. Xiong,et al. Identification of Drought Tolerance Determinants by Genetic Analysis of Root Response to Drought Stress and Abscisic Acid1 , 2006, Plant Physiology.
[57] Hank C Wu,et al. A community resource for high-throughput quantitative RT-PCR analysis of transcription factor gene expression in Medicago truncatula , 2008, Plant Methods.
[58] T. Juenger,et al. Drought, metabolites, and Arabidopsis natural variation: a promising combination for understanding adaptation to water-limited environments. , 2011, Current opinion in plant biology.
[59] P. Gallusci,et al. Medicago truncatula, a model plant for studying the molecular genetics of theRhizobium-legume symbiosis , 1990, Plant Molecular Biology Reporter.
[60] K. Shinozaki,et al. Engineering drought tolerance in plants: discovering and tailoring genes to unlock the future. , 2006, Current opinion in biotechnology.
[61] M. Deyholos,et al. Making the most of drought and salinity transcriptomics. , 2010, Plant, cell & environment.
[62] T. Juenger,et al. Physiological Genomics of Response to Soil Drying in Diverse Arabidopsis Accessions[W][OA] , 2012, Plant Cell.
[63] Hong-Kyu Choi,et al. A Sequence-Based Genetic Map of Medicago truncatula and Comparison of Marker Colinearity with M. sativa , 2004, Genetics.
[64] A. Aharoni,et al. Improvement of water use efficiency in rice by expression of HARDY, an Arabidopsis drought and salt tolerance gene , 2007, Proceedings of the National Academy of Sciences.
[65] Christopher P. Bonin,et al. ’ s Choice Series on the Next Generation of Biotech Crops Bacterial RNA Chaperones Confer Abiotic Stress Tolerance in Plants and Improved Grain Yield in Maize under Water-Limited Conditions [ W ] , 2008 .
[66] E. Blumwald,et al. Developing salt-tolerant crop plants: challenges and opportunities. , 2005, Trends in plant science.
[67] Emma Marris,et al. Water: More crop per drop , 2008, Nature.
[68] X. Chen,et al. Activated Expression of an Arabidopsis HD-START Protein Confers Drought Tolerance with Improved Root System and Reduced Stomatal Density[W][OA] , 2008, The Plant Cell Online.
[69] K. Shinozaki,et al. AREB1, AREB2, and ABF3 are master transcription factors that cooperatively regulate ABRE-dependent ABA signaling involved in drought stress tolerance and require ABA for full activation. , 2010, The Plant journal : for cell and molecular biology.
[70] N. Young,et al. Translating Medicago truncatula genomics to crop legumes. , 2009, Current opinion in plant biology.
[71] P. Verma,et al. Long Term Transcript Accumulation during the Development of Dehydration Adaptation in Cicer arietinum1 , 2004, Plant Physiology.
[72] Transcription Factor CBF4 Is a Regulator of Drought Adaptation in Arabidopsis1 , 2002, Plant Physiology.
[73] D. Galbraith,et al. Monitoring large-scale changes in transcript abundance in drought- and salt-stressed barley , 2004, Plant Molecular Biology.
[74] V. Smil. Nitrogen in crop production: An account of global flows , 1999 .
[75] Katharine E. Hubbard,et al. Early abscisic acid signal transduction mechanisms: newly discovered components and newly emerging questions. , 2010, Genes & development.
[76] R. E. Sharp,et al. Root growth maintenance during water deficits: physiology to functional genomics. , 2004, Journal of experimental botany.
[77] K. Yamaguchi-Shinozaki,et al. Improving plant drought, salt, and freezing tolerance by gene transfer of a single stress-inducible transcription factor. , 1999, Nature biotechnology.
[78] D. Nielsen,et al. Water deficit effects on root distribution of soybean, field pea and chickpea , 2006 .
[79] Elizabeth Pennisi,et al. The Blue Revolution, Drop by Drop, Gene by Gene , 2008, Science.
[80] Kazuo Shinozaki,et al. Isolation and Functional Analysis of Arabidopsis Stress-Inducible NAC Transcription Factors That Bind to a Drought-Responsive cis-Element in the early responsive to dehydration stress 1 Promoterw⃞ , 2004, The Plant Cell Online.
[81] G. Weiller,et al. A gene expression atlas of the model legume Medicago truncatula. , 2008, The Plant journal : for cell and molecular biology.
[82] S. Cutler,et al. Abscisic acid: emergence of a core signaling network. , 2010, Annual review of plant biology.
[83] P. Christou,et al. Modulation of the polyamine biosynthetic pathway in transgenic rice confers tolerance to drought stress. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[84] A. Covarrubias,et al. Relationship between carbohydrate partitioning and drought resistance in common bean. , 2008, Plant, cell & environment.
[85] D. Cook,et al. Medicago truncatula--a model in the making! , 1999, Current opinion in plant biology.
[86] A. Aharoni,et al. The SHINE Clade of AP2 Domain Transcription Factors Activates Wax Biosynthesis, Alters Cuticle Properties, and Confers Drought Tolerance when Overexpressed in Arabidopsis w⃞ , 2004, The Plant Cell Online.
[87] W. Broughton,et al. Control of leghaemoglobin synthesis in snake beans. , 1971, The Biochemical journal.
[88] Corey D Broeckling,et al. MET-IDEA: data extraction tool for mass spectrometry-based metabolomics. , 2006, Analytical chemistry.
[89] N. Smirnoff,et al. Hydroxyl radical scavenging activity of compatible solutes , 1989 .
[90] K. Shinozaki,et al. SRK2C, a SNF1-related protein kinase 2, improves drought tolerance by controlling stress-responsive gene expression in Arabidopsis thaliana. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[91] Takayuki Sasaki,et al. Quality control of photosystem II: impact of light and heat stresses , 2008, Photosynthesis Research.
[92] W. McCombie,et al. Syntenic Relationships between Medicago truncatulaand Arabidopsis Reveal Extensive Divergence of Genome Organization1,212 , 2003, Plant Physiology.
[93] G. Edmeades,et al. Molecular and physiological approaches to maize improvement for drought tolerance. , 2002, Journal of experimental botany.
[94] B. Roe,et al. Estimating genome conservation between crop and model legume species. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[95] H. Bohnert,et al. Journal of Experimental Botany Advance Access published November 16, 2006 Journal of Experimental Botany, Page 1 of 12 Integrated Approaches to Sustain and Improve Plant Production under Drought Stress Special Issue , 2006 .
[96] P. Palange,et al. From the authors , 2007, European Respiratory Journal.
[97] D. Shah,et al. Defensin gene family in Medicago truncatula: structure, expression and induction by signal molecules , 2005, Plant Molecular Biology.
[98] K. Akiyama,et al. Monitoring expression profiles of Arabidopsis gene expression during rehydration process after dehydration using ca 7000 full-length cDNA microarray. , 2003, The Plant journal : for cell and molecular biology.
[99] P. Kramer,et al. Responses of Plants to Environmental Stresses , 1973 .