More from less: plant growth under limited water.
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[1] Franky R. G. Terras,et al. Functional Analysis of Cyclin-Dependent Kinase Inhibitors of Arabidopsis , 2001, The Plant Cell Online.
[2] Yunbo Luo,et al. Rh-PIP2;1, a Rose Aquaporin Gene, Is Involved in Ethylene-Regulated Petal Expansion1[C][W][OA] , 2008, Plant Physiology.
[3] E. Grill,et al. Expression of the Arabidopsis Mutant abi1 Gene Alters Abscisic Acid Sensitivity, Stomatal Development, and Growth Morphology in Gray Poplars1[C] , 2009, Plant Physiology.
[4] D. Inzé,et al. Cold Nights Impair Leaf Growth and Cell Cycle Progression in Maize through Transcriptional Changes of Cell Cycle Genes1[W][OA] , 2007, Plant Physiology.
[5] H. Tsukaya,et al. Cell cycling and cell enlargement in developing leaves of Arabidopsis. , 1999, Developmental biology.
[6] M. De Block,et al. Poly(ADP-ribose) polymerase in plants affects energy homeostasis, cell death and stress tolerance. , 2004, The Plant journal : for cell and molecular biology.
[7] Aileen R. Smith,et al. The effect of water stress on 1-(malonylamino)cyclopropane-1-carboxylic acid concentration in plant tissues , 2000, Plant Growth Regulation.
[8] D. Van Der Straeten,et al. Ethylene Regulates Arabidopsis Development via the Modulation of DELLA Protein Growth Repressor Function Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.015685. , 2003, The Plant Cell Online.
[9] P. Schopfer,et al. Evidence for the involvement of cell wall peroxidase in the generation of hydroxyl radicals mediating extension growth , 2003, Planta.
[10] R. Yamamoto,et al. Progressive Inhibition by Water Deficit of Cell Wall Extensibility and Growth along the Elongation Zone of Maize Roots Is Related to Increased Lignin Metabolism and Progressive Stelar Accumulation of Wall Phenolics1 , 2005, Plant Physiology.
[11] K. Shinozaki,et al. Engineering drought tolerance in plants: discovering and tailoring genes to unlock the future. , 2006, Current opinion in biotechnology.
[12] M. Bennett,et al. Gibberellin Signaling in the Endodermis Controls Arabidopsis Root Meristem Size , 2009, Current Biology.
[13] D. Luu,et al. Stimulus-induced downregulation of root water transport involves reactive oxygen species-activated cell signalling and plasma membrane intrinsic protein internalization. , 2008, The Plant journal : for cell and molecular biology.
[14] P. Achard,et al. Plant DELLAs Restrain Growth and Promote Survival of Adversity by Reducing the Levels of Reactive Oxygen Species , 2008, Current Biology.
[15] R. E. Sharp,et al. Maintenance of shoot growth by endogenous ABA: genetic assessment of the involvement of ethylene suppression. , 2003, Journal of experimental botany.
[16] C. Granier,et al. Plasticity to soil water deficit in Arabidopsis thaliana: dissection of leaf development into underlying growth dynamic and cellular variables reveals invisible phenotypes. , 2006, Plant, cell & environment.
[17] R. E. Sharp,et al. Abscisic acid accumulation maintains maize primary root elongation at low water potentials by restricting ethylene production. , 2000, Plant physiology.
[18] William J. Davies,et al. Root Signals and the Regulation of Growth and Development of Plants in Drying Soil , 1991 .
[19] Jonathan D. G. Jones,et al. DELLAs Control Plant Immune Responses by Modulating the Balance of Jasmonic Acid and Salicylic Acid Signaling , 2008, Current Biology.
[20] D. Inzé,et al. Novel Plant-specific Cyclin-dependent Kinase Inhibitors Induced by Biotic and Abiotic Stresses* , 2007, Journal of Biological Chemistry.
[21] K. Shinozaki,et al. Identification of stress-tolerance-related transcription-factor genes via mini-scale Full-length cDNA Over-eXpressor (FOX) gene hunting system. , 2007, Biochemical and biophysical research communications.
[22] E. Ábrahám,et al. Functional Identification of Arabidopsis Stress Regulatory Genes Using the Controlled cDNA Overexpression System1[W][OA] , 2008, Plant Physiology.
[23] D. Inzé,et al. SIAMESE, a Plant-Specific Cell Cycle Regulator, Controls Endoreplication Onset in Arabidopsis thaliana[W] , 2006, The Plant Cell Online.
[24] R. E. Sharp,et al. Cell Wall Proteome in the Maize Primary Root Elongation Zone. II. Region-Specific Changes in Water Soluble and Lightly Ionically Bound Proteins under Water Deficit1[W][OA] , 2007, Plant Physiology.
[25] Transcription Factor CBF4 Is a Regulator of Drought Adaptation in Arabidopsis1 , 2002, Plant Physiology.
[26] Daniel L. Mace,et al. Cell Identity Mediates the Response of Arabidopsis Roots to Abiotic Stress , 2008, Science.
[27] R. E. Sharp,et al. Growth of the maize primary root at low water potentials : I. Spatial distribution of expansive growth. , 1988, Plant physiology.
[28] S. Dhondt,et al. Gibberellin Signaling Controls Cell Proliferation Rate in Arabidopsis , 2009, Current Biology.
[29] F. Tardieu,et al. Control of Leaf Expansion Rate of Droughted Maize Plants under Fluctuating Evaporative Demand (A Superposition of Hydraulic and Chemical Messages?) , 1997, Plant physiology.
[30] C. Granier,et al. Rewatering plants after a long water-deficit treatment reveals that leaf epidermal cells retain their ability to expand after the leaf has apparently reached its final size. , 2008, Annals of botany.
[31] P. Hedden,et al. The Cold-Inducible CBF1 Factor–Dependent Signaling Pathway Modulates the Accumulation of the Growth-Repressing DELLA Proteins via Its Effect on Gibberellin Metabolism[W] , 2008, The Plant Cell Online.
[32] 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.
[33] François Tardieu,et al. Aquaporin-Mediated Reduction in Maize Root Hydraulic Conductivity Impacts Cell Turgor and Leaf Elongation Even without Changing Transpiration1[W] , 2009, Plant Physiology.
[34] S. Barak,et al. STRESS RESPONSE SUPPRESSOR1 and STRESS RESPONSE SUPPRESSOR2, Two DEAD-Box RNA Helicases That Attenuate Arabidopsis Responses to Multiple Abiotic Stresses1[OA] , 2007, Plant Physiology.
[35] P. M. Neumann,et al. The Spatially Variable Inhibition by Water Deficit of Maize Root Growth Correlates with Altered Profiles of Proton Flux and Cell Wall pH1 , 2004, Plant Physiology.
[36] F. Tardieu,et al. Drought and Abscisic Acid Effects on Aquaporin Content Translate into Changes in Hydraulic Conductivity and Leaf Growth Rate: A Trans-Scale Approach1[W][OA] , 2009, Plant Physiology.
[37] F. Tardieu,et al. Are ABA, ethylene or their interaction involved in the response of leaf growth to soil water deficit? An analysis using naturally occurring variation or genetic transformation of ABA production in maize. , 2006, Plant, cell & environment.
[38] C. Fankhauser,et al. A molecular framework for light and gibberellin control of cell elongation , 2008, Nature.
[39] Wilhelm Gruissem,et al. Biochemistry & Molecular Biology of Plants , 2002 .
[40] D. Inzé,et al. Genome-Wide Analysis of Gene Expression Profiles Associated with Cell Cycle Transitions in Growing Organs of Arabidopsis , 2005 .
[41] R. E. Sharp,et al. Modification of expansin transcript levels in the maize primary root at low water potentials. , 2001, Plant physiology.
[42] Patrick Achard,et al. Integration of Plant Responses to Environmentally Activated Phytohormonal Signals , 2006, Science.
[43] Ghasem Hosseini Salekdeh,et al. Conceptual framework for drought phenotyping during molecular breeding. , 2009, Trends in plant science.
[44] D. Inzé,et al. Cell Cycle Modulation in the Response of the Primary Root of Arabidopsis to Salt Stress1 , 2004, Plant Physiology.
[45] Ian C Dodd,et al. Long-distance signals regulating stomatal conductance and leaf growth in tomato (Lycopersicon esculentum) plants subjected to partial root-zone drying. , 2004, Journal of experimental botany.
[46] Granier,et al. Water deficit and spatial pattern of leaf development. Variability In responses can Be simulated using a simple model of leaf development , 1999, Plant physiology.
[47] 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.
[48] K. Chenu,et al. PHENOPSIS, an automated platform for reproducible phenotyping of plant responses to soil water deficit in Arabidopsis thaliana permitted the identification of an accession with low sensitivity to soil water deficit. , 2006, The New phytologist.
[49] Jianhua Zhu,et al. Methods and concepts in quantifying resistance to drought, salt and freezing, abiotic stresses that affect plant water status. , 2006, The Plant journal : for cell and molecular biology.
[50] Filip Vandenbussche,et al. Ethylene-induced Arabidopsis hypocotyl elongation is dependent on but not mediated by gibberellins. , 2007, Journal of experimental botany.
[51] R. E. Sharp,et al. Spatial distribution of transcript changes in the maize primary root elongation zone at low water potential , 2008, BMC Plant Biology.
[52] L. Schreiber,et al. The short-term growth response to salt of the developing barley leaf. , 2006, Journal of experimental botany.
[53] K. Oda,et al. The DDF1 transcriptional activator upregulates expression of a gibberellin-deactivating gene, GA2ox7, under high-salinity stress in Arabidopsis. , 2008, The Plant journal : for cell and molecular biology.
[54] B. Scheres,et al. Arabidopsis CULLIN3 Genes Regulate Primary Root Growth and Patterning by Ethylene-Dependent and -Independent Mechanisms , 2009, PLoS genetics.
[55] D. Inzé,et al. Developmental Stage Specificity and the Role of Mitochondrial Metabolism in the Response of Arabidopsis Leaves to Prolonged Mild Osmotic Stress1[C][W][OA] , 2009, Plant Physiology.
[56] J. H. Costa,et al. AOX--a functional marker for efficient cell reprogramming under stress? , 2006, Trends in plant science.
[57] D. Inzé,et al. Expression of cell cycle regulatory genes and morphological alterations in response to salt stress in Arabidopsis thaliana , 2000, Planta.
[58] L. Sieburth,et al. Dissecting the biosynthetic pathway for the bypass1 root-derived signal. , 2007, The Plant journal : for cell and molecular biology.
[59] F. Tardieu,et al. Association of Specific Expansins with Growth in Maize Leaves Is Maintained under Environmental, Genetic, and Developmental Sources of Variation1[C][W][OA] , 2006, Plant Physiology.
[60] K. Bradford,et al. Xylem Transport of 1-Aminocyclopropane-1-carboxylic Acid, an Ethylene Precursor, in Waterlogged Tomato Plants. , 1980, Plant physiology.
[61] D. Schachtman,et al. Chemical root to shoot signaling under drought. , 2008, Trends in plant science.
[62] L. Aguirrezábal,et al. Genetic variability for leaf growth rate and duration under water deficit in sunflower: analysis of responses at cell, organ, and plant level. , 2008, Journal of experimental botany.