Individual vs. combinatorial effect of elevated CO2 conditions and salinity stress on Arabidopsis thaliana liquid cultures: Comparing the early molecular response using time-series transcriptomic and metabolomic analyses
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[1] T. Flowers. Improving crop salt tolerance. , 2004, Journal of experimental botany.
[2] S. Brouder,et al. Impact of climate change on crop nutrient and water use efficiencies. , 2008, Physiologia plantarum.
[3] B. Rathinasabapathi,et al. Osmoprotectant β‐alanine betaine synthesis in the Plumbaginaceae: S‐adenosyl‐l‐methionine dependent N‐methylation of β‐alanine to its betaine is via N‐methyl and N,N‐dimethyl β‐alanines , 2000 .
[4] L. H. Allen,et al. C02 Enrichment Delays a Rapid, Drought-Induced Decrease in Rubisco Small Subunit Transcript Abundance , 1999 .
[5] M. Klapa,et al. Standardizing GC-MS metabolomics. , 2008, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[6] John Quackenbush,et al. Global Transcription Profiling Reveals Comprehensive Insights into Hypoxic Response in Arabidopsis1[w] , 2005, Plant Physiology.
[7] S. Munné-Bosch,et al. Drought-Induced Changes in the Redox State of α-Tocopherol, Ascorbate, and the Diterpene Carnosic Acid in Chloroplasts of Labiatae Species Differing in Carnosic Acid Contents1 , 2003, Plant Physiology.
[8] Bhaskar Dutta,et al. Significance analysis of time‐series transcriptomic data: A methodology that enables the identification and further exploration of the differentially expressed genes at each time‐point , 2007, Biotechnology and bioengineering.
[9] A. Polle,et al. Differential stress responses of antioxidative systems to drought in pendunculate oak (Quercus robur) and maritime pine (Pinus pinaster) grown under high CO(2) concentrations. , 2001, Journal of experimental botany.
[10] A. Raschi,et al. Interactions between drought and elevated CO2 on alfalfa plants , 1998 .
[11] Russ B. Altman,et al. Missing value estimation methods for DNA microarrays , 2001, Bioinform..
[12] J. Soussana,et al. Crop and pasture response to climate change , 2007, Proceedings of the National Academy of Sciences.
[13] W. Frommer,et al. The role of transient starch in acclimation to elevated atmospheric CO2 , 1998, FEBS letters.
[14] Jian-Kang Zhu,et al. Salt and drought stress signal transduction in plants. , 2002, Annual review of plant biology.
[15] Mark Stitt,et al. Genome-Wide Reprogramming of Primary and Secondary Metabolism, Protein Synthesis, Cellular Growth Processes, and the Regulatory Infrastructure of Arabidopsis in Response to Nitrogen1[w] , 2004, Plant Physiology.
[16] A. Tyagi,et al. Emerging trends in the functional genomics of the abiotic stress response in crop plants. , 2007, Plant biotechnology journal.
[17] Wei Tang,et al. Enhanced stress tolerance in transgenic pine expressing the pepper CaPF1 gene is associated with the polyamine biosynthesis , 2006, Plant Cell Reports.
[18] S. Somerville,et al. A genome-wide transcriptional analysis using Arabidopsis thaliana Affymetrix gene chips determined plant responses to phosphate deprivation. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[19] Dennis Shasha,et al. An integrated genetic, genomic and systems approach defines gene networks regulated by the interaction of light and carbon signaling pathways in Arabidopsis , 2008, BMC Systems Biology.
[20] 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.
[21] John Quackenbush,et al. Time‐series integrated “omic” analyses to elucidate short‐term stress‐induced responses in plant liquid cultures , 2009, Biotechnology and bioengineering.
[22] V. Shulaev,et al. When Defense Pathways Collide. The Response of Arabidopsis to a Combination of Drought and Heat Stress1[w] , 2004, Plant Physiology.
[23] V. Chalifa-Caspi,et al. Functional-genomics-based identification of genes that regulate Arabidopsis responses to multiple abiotic stresses. , 2008, Plant, cell & environment.
[24] Gloria Coruzzi,et al. Genomic Analysis of the Nitrate Response Using a Nitrate Reductase-Null Mutant of Arabidopsis1[w] , 2004, Plant Physiology.
[25] A I Saeed,et al. TM4: a free, open-source system for microarray data management and analysis. , 2003, BioTechniques.
[26] A. Altman,et al. Plant responses to drought, salinity and extreme temperatures: towards genetic engineering for stress tolerance , 2003, Planta.
[27] Marcel JT Reinders,et al. Combinatorial effects of environmental parameters on transcriptional regulation in Saccharomyces cerevisiae: A quantitative analysis of a compendium of chemostat-based transcriptome data , 2009, BMC Genomics.
[28] A. Leakey. Rising atmospheric carbon dioxide concentration and the future of C4 crops for food and fuel , 2009, Proceedings of the Royal Society B: Biological Sciences.
[29] S. Reader,et al. Breeding for abiotic stresses for sustainable agriculture , 2008, Philosophical Transactions of the Royal Society B: Biological Sciences.
[30] M. Klapa,et al. Data correction strategy for metabolomics analysis using gas chromatography-mass spectrometry. , 2007, Metabolic engineering.
[31] V. Vadez,et al. Transgenic approaches for abiotic stress tolerance in plants: retrospect and prospects , 2008, Plant Cell Reports.
[32] C. Daub,et al. BMC Systems Biology , 2007 .
[33] F. Navari-Izzo,et al. The oxidative stress caused by salinity in two barley cultivars is mitigated by elevated CO2. , 2009, Physiologia plantarum.
[34] A. Altman,et al. Recent advances in engineering plant tolerance to abiotic stress: achievements and limitations. , 2005, Current opinion in biotechnology.
[35] T. Nanmori,et al. Similar regulation patterns of choline monooxygenase, phosphoethanolamine N-methyltransferase and S-adenosyl-L-methionine synthetase in leaves of the halophyte Atriplex nummularia L. , 2005, Plant & cell physiology.
[36] I. Sánchez-Aguayo,et al. Salt stress enhances xylem development and expression of S-adenosyl-l-methionine synthase in lignifying tissues of tomato plants , 2004, Planta.
[37] T. Sakurai,et al. Comparative Genomics in Salt Tolerance between Arabidopsis and Arabidopsis-Related Halophyte Salt Cress Using Arabidopsis Microarray1 , 2004, Plant Physiology.
[38] Jian-Kang Zhu,et al. Reconstitution in yeast of the Arabidopsis SOS signaling pathway for Na+ homeostasis , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[39] E. Albertó,et al. Modulation of polyamine balance in Lotus glaber by salinity and arbuscular mycorrhiza. , 2007, Plant physiology and biochemistry : PPB.
[40] F. Hayashi,et al. Oscillation and regulation of proline content by P5CS and ProDH gene expressions in the light/dark cycles in Arabidopsis thaliana L. , 2000, Plant & cell physiology.
[41] M. Tester,et al. Sodium Influx and Accumulation in Arabidopsis1 , 2003, Plant Physiology.
[42] S. Chen,et al. Modulation of Ethylene Responses Affects Plant Salt-Stress Responses1[OA] , 2006, Plant Physiology.