Physiology, Biochemistry and Molecular Biology of Plant Root Systems Subjected to Flooding of the Soil
暂无分享,去创建一个
[1] M. Jackson. Long-distance signalling from roots to shoots assessed: the flooding story. , 2002, Journal of experimental botany.
[2] M. Jackson,et al. Rapid changes in cell wall pectic polysaccharides are closely associated with early stages of aerenchyma formation, a spatially localized form of programmed cell death in roots of maize ( Zea mays L.) promoted by ethylene , 2001 .
[3] B. Tudzynski. Plant Responses to Environmental Stresses: From Phytohormones to Genome Reorganization , 2001 .
[4] C. Peterson,et al. Development and Structure of the Root Cortex in Caltha palustris L. and Nymphaea odorata Ait. , 2000 .
[5] T. Setter,et al. Enhancement of Submergence Tolerance in Transgenic Rice Overproducing Pyruvate Decarboxylase , 2000 .
[6] A L Burlingame,et al. Patterns of protein synthesis and tolerance of anoxia in root tips of maize seedlings acclimated to a low-oxygen environment, and identification of proteins by mass spectrometry. , 2000, Plant physiology.
[7] H. Matsumura,et al. Technical advance: transcript profiling in rice (Oryza sativa L.) seedlings using serial analysis of gene expression (SAGE) , 1999, The Plant journal : for cell and molecular biology.
[8] J. Fisher,et al. Influence of Flooding on Net CO2Assimilation, Growth and Stem Anatomy of Annona Species , 1999 .
[9] E. Huq,et al. An anaerobically inducible early (aie) gene family from rice , 1999, Plant Molecular Biology.
[10] J. Bailey-Serres,et al. Oxygen deprivation stimulates Ca2+-mediated phosphorylation of mRNA cap-binding protein eIF4E in maize roots. , 1999, The Plant journal : for cell and molecular biology.
[11] J. Raven,et al. Intracellular pH regulation in plants under anoxia , 1999 .
[12] Laurence Barker,et al. Update on sucrose transport in higher plants , 1999 .
[13] D. Zhuo,et al. The S7 ribosomal protein gene is truncated and overlaps a cytochrome c biogenesis gene in pea mitochondria , 1999, Plant Molecular Biology.
[14] W. Armstrong,et al. Formation of Aerenchyma and the Processes of Plant Ventilation in Relation to Soil Flooding and Submergence , 1999 .
[15] T. Setter,et al. Hypoxia Induces Anoxia Tolerance in completely Submerged Rice Seedlings , 1999 .
[16] H. Peng,et al. Mutations affecting induction of glycolytic and fermentative genes during germination and environmental stresses in Arabidopsis. , 1999, Plant physiology.
[17] Bush,et al. Mitochondrial contribution to the anoxic Ca2+ signal in maize suspension-cultured cells , 1998, Plant physiology.
[18] W. Yip,et al. The promoter of LE-ACS7, an early flooding-induced 1-aminocyclopropane-1-carboxylate synthase gene of the tomato, is tagged by a Sol3 transposon. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[19] W. Peacock,et al. Evidence for a role for AtMYB2 in the induction of the Arabidopsis alcohol dehydrogenase gene (ADH1) by low oxygen. , 1998, Genetics.
[20] C. Kuhlemeier,et al. Anoxia tolerance in tobacco roots: effect of overexpression of pyruvate decarboxylase , 1998 .
[21] Ricard,et al. Evidence for the critical role of sucrose synthase for anoxic tolerance of maize roots using a double mutant , 1998, Plant physiology.
[22] R. Barrero,et al. Cellular dissection of the degradation pattern of cortical cell death during aerenchyma formation of rice roots , 1998, Planta.
[23] S. Biemelt,et al. Re-Aeration following Hypoxia or Anoxia Leads to Activation of the Antioxidative Defense System in Roots of Wheat Seedlings , 1998, Plant physiology.
[24] G. Valle,et al. Maturation and translation mechanisms involved in the expression of a myb gene of rice , 1997, Plant Molecular Biology.
[25] J. Bailey-Serres,et al. RNase Activities Are Reduced Concomitantly with Conservation of Total Cellular RNA and Ribosomes in O2-Deprived Seedling Roots of Maize , 1997, Plant physiology.
[26] J. Olson,et al. Rice Hemoglobins (Gene Cloning, Analysis, and O2-Binding Kinetics of a Recombinant Protein Synthesized in Escherichia coli) , 1997, Plant physiology.
[27] A. Lane,et al. Anaerobic nitrate and ammonium metabolism in flood-tolerant rice coleoptiles , 1997 .
[28] M. Van Montagu,et al. Effects of Osmoprotectants upon NaCl Stress in Rice , 1997, Plant physiology.
[29] R. Hill,et al. Expression, Purification, and Properties of Recombinant Barley (Hordeum sp.) Hemoglobin , 1997, The Journal of Biological Chemistry.
[30] J. Rivoal,et al. Differential Induction of Pyruvate Decarboxylase Subunits and Transcripts in Anoxic Rice Seedlings , 1997, Plant physiology.
[31] M. Drew,et al. Ethylene Biosynthesis during Aerenchyma Formation in Roots of Maize Subjected to Mechanical Impedance and Hypoxia , 1996, Plant physiology.
[32] P. A. Attwood,et al. Roots of willow (Salix viminalis L.) show marked tolerance to oxygen shortage in flooded soils and in solution culture , 1996, Plant and Soil.
[33] R. Dawe,et al. Both 5[prime] and 3[prime] Sequences of Maize adh1 mRNA Are Required for Enhanced Translation under Low-Oxygen Conditions , 1996, Plant physiology.
[34] W. Davies,et al. Stomatal Closure in Flooded Tomato Plants Involves Abscisic Acid and a Chemically Unidentified Anti-Transpirant in Xylem Sap , 1996, Plant physiology.
[35] M. Sachs,et al. A Flooding-Induced Xyloglucan Endo-Transglycosylase Homolog in Maize Is Responsive to Ethylene and Associated with Aerenchyma , 1996, Plant physiology.
[36] W. Armstrong,et al. Pathways of aeration and the mechanisms and beneficial effects of humidity- and Venturi-induced convections in Phragmites australis (Cav.) Trin. ex Steud. , 1996 .
[37] R. O. Poyton,et al. Oxygen sensing and molecular adaptation to hypoxia. , 1996, Physiological reviews.
[38] R. Robins,et al. Phytohormone-induced GABA production in transformed root cultures of Datura stramonium: an in vivo 15N NMR study , 1996 .
[39] J. Xia,et al. Regulation of H+ Extrusion and Cytoplasmic pH in Maize Root Tips Acclimated to a Low-Oxygen Environment , 1996, Plant physiology.
[40] P. Saglio,et al. Glycolytic Flux and Hexokinase Activities in Anoxic Maize Root Tips Acclimated by Hypoxic Pretreatment , 1996, Plant physiology.
[41] M. Jackson,et al. Increased 1-Aminocyclopropane-1-Carboxylic Acid Oxidase Activity in Shoots of Flooded Tomato Plants Raises Ethylene Production to Physiologically Active Levels , 1995, Plant physiology.
[42] C. Kuhlemeier,et al. Aerobic fermentation in tobacco pollen , 1995, Plant Molecular Biology.
[43] J. Xia,et al. Nucleotide Levels Do Not Critically Determine Survival of Maize Root Tips Acclimated to a Low-Oxygen Environment , 1995, Plant physiology.
[44] R. Ferl,et al. Characterization of a maize G-box binding factor that is induced by hypoxia. , 1995, The Plant journal : for cell and molecular biology.
[45] J. Bailey-Serres,et al. Post-transcriptional regulation of gene expression in oxygen-deprived roots of maize , 1995 .
[46] D. MacAlpine,et al. Differential Induction of mRNAs for the Glycolytic and Ethanolic Fermentative Pathways by Hypoxia and Anoxia in Maize Seedlings , 1994, Plant physiology.
[47] M. Sachs,et al. Elevation of cytosolic calcium precedes anoxic gene expression in maize suspension-cultured cells. , 1994, The Plant cell.
[48] W. Peacock,et al. Differential Interactions of Promoter Elements in Stress Responses of the Arabidopsis Adh Gene , 1994, Plant physiology.
[49] M. Drew,et al. Induction of Enzymes Associated with Lysigenous Aerenchyma Formation in Roots of Zea mays during Hypoxia or Nitrogen Starvation , 1994, Plant physiology.
[50] M. Johnson,et al. The Arabidopsis thaliana myo-Inositol 1-Phosphate Synthase (EC 5.5.1.4) , 1994, Plant physiology.
[51] M. Sachs,et al. Involvement of Intracellular Calcium in Anaerobic Gene Expression and Survival of Maize Seedlings , 1994, Plant physiology.
[52] B. Cobb,et al. Hypoxic Induction of Anoxia Tolerance in Roots of Adh1 Null Zea mays L , 1994, Plant physiology.
[53] R. Hill,et al. A cereal haemoglobin gene is expressed in seed and root tissues under anaerobic conditions , 1994, Plant Molecular Biology.
[54] L. Voesenek,et al. Enhanced ethylene production by primary roots of Zea mays L. in response to sub-ambient partial pressures of oxygen , 1993 .
[55] E. Steudle,et al. Effects of anaerobic conditions on water and solute relations, and on active transport in roots of maize (Zea mays L.) , 1993, Planta.
[56] A. Hanson,et al. Evidence for a Large and Sustained Glycolytic Flux to Lactate in Anoxic Roots of Some Members of the Halophytic Genus Limonium , 1993, Plant physiology.
[57] R. Ferl,et al. Brain proteins in plants: an Arabidopsis homolog to neurotransmitter pathway activators is part of a DNA binding complex. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[58] N. de Vetten,et al. A maize protein associated with the G-box binding complex has homology to brain regulatory proteins. , 1992, The Plant cell.
[59] J. Xia,et al. Lactic Acid efflux as a mechanism of hypoxic acclimation of maize root tips to anoxia. , 1992, Plant physiology.
[60] L. Voesenek,et al. An amalgamation between hormone physiology and plant ecology: A review on flooding resistance and ethylene , 1992, Journal of Plant Growth Regulation.
[61] E. Vierling,et al. Plant responses to environmental stress , 1992, Current Biology.
[62] W. Peacock,et al. The anaerobic responsive element contains two GC-rich sequences essential for binding a nuclear protein and hypoxic activation of the maize Adh1 promoter. , 1991, Nucleic acids research.
[63] R. Gaut,et al. Hypoxia enhances phosphorylation of eukaryotic initiation factor 4A in maize root tips. , 1991, The Journal of biological chemistry.
[64] S. Hwang,et al. Abscisic Acid induces anaerobiosis tolerance in corn. , 1991, Plant physiology.
[65] R. Bligny,et al. Kinetic studies of the variations of cytoplasmic pH, nucleotide triphosphates (31P-NMR) and lactate during normoxic and anoxic transitions in maize root tips. , 1991, European journal of biochemistry.
[66] H. Greenway,et al. Aerenchyma formation and associated oxygen movement in seminal and nodal roots of wheat. , 1990 .
[67] S. Adkins,et al. Diurnal changes in radial oxygen loss and ethanol metabolism in roots of submerged and non‐submerged rice seedlings , 1989 .
[68] W. Armstrong,et al. Root morphology and aerenchyma formation as indicators for the flood-tolerance of Rumex species , 1989 .
[69] W. Crosby,et al. Anaerobic induction of alanine aminotransferase in barley root tissue. , 1989, Plant physiology.
[70] W. Peacock,et al. A role for haemoglobin in all plant roots , 1988 .
[71] R. Crawford,et al. Superoxide Dismutase as an Anaerobic Polypeptide : A Key Factor in Recovery from Oxygen Deprivation in Iris pseudacorus? , 1987, Plant physiology.
[72] W. Peacock,et al. DNA sequences required for anaerobic expression of the maize alcohol dehydrogenase 1 gene. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[73] W. Armstrong,et al. THE ANATOMICAL CHARACTERISTICS OF ROOTS AND PLANT RESPONSE TO SOIL FLOODING , 1987 .
[74] J. Strommer,et al. Anaerobic treatment of maize roots affects transcription of Adh1 and transcript stability , 1986, Molecular and cellular biology.
[75] M. Jackson,et al. A Transmission and Cryo-Scanning Electron Microscopy Study of the Formation of Aerenchyma (Cortical Gas-Filled Space) in Adventitious Roots of Rice (Oryza sativa) , 1986 .
[76] R. E. Sojka,et al. SOIL OXYGEN EFFECTS ON TWO DETERMINATE SOYBEAN ISOLINES1 , 1985 .
[77] M. Jackson,et al. Stimulation of ethylene production and gas-space (aerenchyma) formation in adventitious roots of Zea mays L. by small partial pressures of oxygen , 1985, Planta.
[78] P. Saglio. Effect of path or sink anoxia on sugar translocation in roots of maize seedlings. , 1985, Plant physiology.
[79] I. Anderson,et al. Further Evidence that Cytoplasmic Acidosis Is a Determinant of Flooding Intolerance in Plants. , 1985, Plant physiology.
[80] V. Walbot,et al. Cytoplasmic acidosis as a determinant of flooding intolerance in plants. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[81] M. Jackson,et al. Modification of 3,5-diiodo-4-hydroxybenzoic acid (DIHB) activity and stimulation of ethylene production by small concentrations of oxygen in the root environment , 1984, Plant Growth Regulation.
[82] V. Walbot,et al. Mechanisms of cytoplasmic pH regulation in hypoxic maize root tips and its role in survival under hypoxia. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[83] O. Jardetzky,et al. Regulation of Cytoplasmic and Vacuolar pH in Maize Root Tips under Different Experimental Conditions. , 1982, Plant physiology.
[84] M. Jackson,et al. Effects of applying etnylene to the root system of Zea mays on growth and nutrient concentration in relation to flooding tolerance , 1981 .
[85] G. Ellmore. ROOT DIMORPHISM IN LUDWIGIA PEPLOIDES (ONAGRACEAE): STRUCTURE AND GAS CONTENT OF MATURE ROOTS , 1981 .
[86] H. Konings,et al. Formation of aerenchyma in roots of Zea mays in aerated solutions, and its relation to nutrient supply , 1980 .
[87] K. Bradford,et al. Xylem Transport of 1-Aminocyclopropane-1-carboxylic Acid, an Ethylene Precursor, in Waterlogged Tomato Plants. , 1980, Plant physiology.
[88] M. Jackson,et al. Ethylene-promoted adventitious rooting and development of cortical air spaces (aerenchyma) in roots may be adaptive responses to flooding in Zea mays L , 1979, Planta.
[89] M. Jackson,et al. A Relationship between Rates of Ethylene Production by Roots and the Promoting or Inhibiting Effects of Exogenous Ethylene and Water on Root Elongation , 1979 .
[90] G. Goodlass,et al. Effects of ethylene on root extension and nodulation of pea (Pisum sativum L.) and white clover (Trifolium repens L.) , 1979, Plant and Soil.
[91] D. M. Reid,et al. The Role of Endogenous Auxins and Ethylene in the Formation of Adventitious Roots and Hypocotyl Hypertrophy in Flooded Sunflower Plants (Helianthus annuus) , 1979 .
[92] M. Jackson,et al. Effect of Waterlogged Soil Conditions on the Production of Ethylene and on Water Relationships in Tomato Plants , 1978 .
[93] J. Pereira,et al. Variations among Woody Angiosperms in Response to Flooding , 1977 .
[94] G. I. Kozlova,et al. Mitochondrial ultrastructure in roots of mesophyte and hydrophyte at anoxia and after glucose feeding , 1977, Protoplasma.
[95] D. Davies,et al. The control of the production of lactate and ethanol by higher plants , 1974, Planta.
[96] M. Kawase. Role of Ethylene in Induction of Flooding Damage in Sunflower , 1974 .
[97] R. Ratcliffe,et al. Manipulating cytoplasmic pH under anoxia: A critical test of the role of pH in the switch from aerobic to anaerobic metabolism , 2004, Planta.
[98] A. Ashford,et al. There is a continuum of gas space in young plants of Avicennia marina , 2004, Hydrobiologia.
[99] N. Skelton,et al. Thermo-osmotic gas supply not detected in Avicennia marina seedlings , 2004, Hydrobiologia.
[100] M. Jackson,et al. Decreased root hydraulic conductivity reduces leaf water potential, initiates stomatal closure and slows leaf expansion in flooded plants of castor oil (Ricinus communis) despite diminished delivery of ABA from the roots to shoots in xylem sap , 2001 .
[101] M. Jackson,et al. Characterisation of programmed cell death during aerenchyma formation induced by ethylene or hypoxia in roots of maize(Zea mays L.) , 2001, Planta.
[102] E. Steudle,et al. Root hydraulic conductance: diurnal aquaporin expression and the effects of nutrient stress. , 2000, Journal of experimental botany.
[103] A. Soriano,et al. Responses to flooding intensity in Leontodon taraxacoides , 1999 .
[104] J. Raven,et al. Regulation of Tissue pH in Plants and Animals : A Reappraisal of Current Techniques , 1999 .
[105] N. Maceira,et al. Flooding tolerance in five populations of Lotus glaber Mill. (Syn. Lotus tenuis Waldst. et. Kit.) , 1999 .
[106] M. Jackson,et al. Transport of 1-aminocyclopropane-1-carboxylic acid (ACC) in the transpiration stream of tomato (Lycopersicon esculentum) in relation to foliar ethylene production and petiole epinasty , 1998 .
[107] M. Jackson,et al. Plant adaptations to anaerobic stress , 1997 .
[108] M. Jackson. Hormones from roots as signals for the shoots of stressed plants , 1997 .
[109] P. Perata,et al. Mobilization of Endosperm Reserves in Cereal Seeds under Anoxia , 1997 .
[110] R. Ratcliffe. METABOLIC ASPECTS OF THE ANOXIC RESPONSE IN PLANT TISSUE , 1995 .
[111] N. Smirnoff,et al. Environment and plant metabolism: flexibility and acclimation. , 1995 .
[112] W. Armstrong,et al. A physical model involving Nuclepore membranes to investigate the mechanism of humidity-induced convection in Phragmites australis , 1994 .
[113] J. Ding,et al. Gravity Sensing by Higher Plants , 1992 .
[114] M. Drew,et al. Metabolic Acclimation to Anoxia Induced by Low (2-4 kPa Partial Pressure) Oxygen Pretreatment (Hypoxia) in Root Tips of Zea mays. , 1988, Plant physiology.
[115] W. Armstrong. Aeration in Higher Plants , 1980 .
[116] W. Norris,et al. Studies of onion root respiration: II. The effect of temperature on the apparent diffusion coefficient in different segments of the root tip , 1949 .
[117] W. Norris,et al. Studies of onion root respiration I. Velocity of oxygen consumption in different segments of root at different temperatures as a function of partial pressure of oxygen , 1949 .