Root Cortical Aerenchyma Enhances the Growth of Maize on Soils with Suboptimal Availability of Nitrogen, Phosphorus, and Potassium1[W][OA]
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[1] Duli Zhao,et al. Influence of Potassium Deficiency on Photosynthesis, Chlorophyll Content, and Chloroplast Ultrastructure of Cotton Plants , 2001, Photosynthetica.
[2] A. Darling,et al. Progressive cortical senescence and formation of lysigenous gas space (Aerenchyma) distinguished by nuclear staining in adventitious roots of Zea mays , 1986 .
[3] J. Lynch,et al. Topsoil foraging – an architectural adaptation of plants to low phosphorus availability , 2001, Plant and Soil.
[4] H. Marschner,et al. Partitioning of shoot and root dry matter and carbohydrates in bean plants suffering from phosphorus, potassium and magnesium deficiency , 1994 .
[5] H. Konings,et al. Formation of aerenchyma in roots of Zea mays in aerated solutions, and its relation to nutrient supply , 1980 .
[6] J. Lynch,et al. THE ETHYLENE UNDERGROUND , 2003 .
[7] Jonathan P Lynch,et al. Theoretical evidence for the functional benefit of root cortical aerenchyma in soils with low phosphorus availability. , 2011, Annals of botany.
[8] Jonathan P. Lynch,et al. Architectural Tradeoffs between Adventitious and Basal Roots for Phosphorus Acquisition , 2005, Plant and Soil.
[9] W. H. Gabelman,et al. Screening maize inbred lines for tolerance to low-P stress condition , 1992, Plant and Soil.
[10] J. Lynch,et al. A critical test of the two prevailing theories of plant response to nutrient availability. , 2003, American journal of botany.
[11] M. Drew,et al. Decreased Ethylene Biosynthesis, and Induction of Aerenchyma, by Nitrogen- or Phosphate-Starvation in Adventitious Roots of Zea mays L. , 1989, Plant physiology.
[12] S. Kaeppler,et al. PHOSPHORUS ACCUMULATION IN MAIZE GRAIN IS NOT INFLUENCED BY XENIA (Zea mays L.) , 2007 .
[13] Raul Ernesto Jaramillo-Velastegui. THE EDAPHIC CONTROL OF PLANT RESPONSE TO CLIMATE CHANGE: EXTENT, INTERACTIONS AND MECHANISMS OF PLANT ADAPTATION , 2008 .
[14] Jonathan P. Lynch,et al. Roots of the Second Green Revolution , 2007 .
[15] J. Lynch,et al. Topsoil foraging and phosphorus acquisition efficiency in maize (Zea mays). , 2005, Functional plant biology : FPB.
[16] J. Hopmans,et al. Transient three-dimensional modeling of soil water and solute transport with simultaneous root growth, root water and nutrient uptake , 1998, Plant and Soil.
[17] J. Lynch,et al. Root cortical aerenchyma improves the drought tolerance of maize (Zea mays L.). , 2010, Plant, cell & environment.
[18] Angela Hodge,et al. The plastic plant: root responses to heterogeneous supplies of nutrients , 2004 .
[19] J. Lynch,et al. Shovelomics: high throughput phenotyping of maize (Zea mays L.) root architecture in the field , 2011, Plant and Soil.
[20] M. Bosco,et al. Heterozygosis drives maize hybrids to select elite 2,4-diacethylphloroglucinol-producing Pseudomonas strains among resident soil populations. , 2006, FEMS microbiology ecology.
[21] F. Andrade,et al. Nitrogen Defeciency in Maize: I. Effects on Crop Growth, Development, Dry Matter Partitioning, and Kernel Set , 1995 .
[22] K. L. Nielsen,et al. The effect of phosphorus availability on the carbon economy of contrasting common bean (Phaseolus vulgaris L.) genotypes. , 2001, Journal of experimental botany.
[23] J. Lynch,et al. Vegetative Growth of the Common Bean in Response to Phosphorus Nutrition , 1991 .
[24] S. Kaeppler,et al. Variation among maize inbred lines and detection of quantitative trait loci for growth at low phosphorus and responsiveness to arbuscular mycorrhizal fungi , 2000 .
[25] S. Kaeppler,et al. Evaluation of six mycorrhizal isolates for their ability to promote growth of maize genotypes under phosphorus deficiency [Zea mays L.] , 2005 .
[26] B. H. Janssen,et al. A mono‐component model of carbon mineralization with a dynamic rate constant , 2000 .
[27] D. Evans,et al. Aerenchyma formation: Tansley review , 2003 .
[28] P. Stamp,et al. Effect of Potassium Deficiency on C 3 and C 4 Cereals , 1980 .
[29] H. Di,et al. Nitrate leaching in temperate agroecosystems: sources, factors and mitigating strategies , 2004, Nutrient Cycling in Agroecosystems.
[30] W. Armstrong,et al. Root morphology and aerenchyma formation as indicators for the flood-tolerance of Rumex species , 1989 .
[31] Robert D. Davis,et al. SimRoot: Modelling and visualization of root systems , 2004, Plant and Soil.
[32] S. A. Barber,et al. A Method for Characterizing the Relation between Nutrient Concentration and Flux into Roots of Intact Plants. , 1974, Plant physiology.
[33] M. Miguel. Functional role and synergystic effect of root traits for phosphorus acquisition efficiency and their genetic basis in common bean (Phaseolus vulgaris L.) , 2010 .
[34] B. Andrieu,et al. Functional-structural plant modelling: a new versatile tool in crop science. , 2010, Journal of experimental botany.
[35] S. S. Clair,et al. Mineral stress: the missing link in understanding how global climate change will affect plants in real world soils , 2004 .
[36] S. McGrath,et al. A risk assessment of sulphur deficiency in cereals using soil and atmospheric deposition data , 1995 .
[37] J. Lynch,et al. Root architectural tradeoffs for water and phosphorus acquisition. , 2005, Functional plant biology : FPB.
[38] M. Hawkesford,et al. Dynamics of Aerenchyma distribution in the cortex of sulfate-deprived adventitious roots of maize. , 2006, Annals of botany.
[39] W. Armstrong,et al. Formation of Aerenchyma and the Processes of Plant Ventilation in Relation to Soil Flooding and Submergence , 1999 .
[40] D. Schachtman,et al. Ethylene Mediates Response and Tolerance to Potassium Deprivation in Arabidopsis[W] , 2009, The Plant Cell Online.
[41] S. Guerreiro,et al. Aerenchyma formation and recovery from hypoxia of the flooded root system of nodulated soybean. , 2005, Annals of botany.
[42] D. Schachtman,et al. Chemical root to shoot signaling under drought. , 2008, Trends in plant science.
[43] John P. Hammond,et al. The Ecophysiology of Plant-Phosphorus Interactions , 2008 .
[44] T. Colmer,et al. Waterlogging Tolerance Among a Diverse Range of Trifolium Accessions is Related to Root Porosity, Lateral Root Formation and ‘Aerotropic Rooting’ , 2001 .
[45] D. Robinson,et al. Phosphorus availability and cortical senescence in cereal roots , 1990 .
[46] M. Drew,et al. Programmed cell death and aerenchyma formation in roots. , 2000, Trends in plant science.
[47] A. Ulrich,et al. Effects of phosphorus deficiency on the photosynthesis and respiration of leaves of sugar beet. , 1973, Plant physiology.
[48] Jan Vanderborght,et al. PARSWMS: A Parallelized Model for Simulating Three‐Dimensional Water Flow and Solute Transport in Variably Saturated Soils , 2007 .
[49] E. Liljeroth,et al. DNA fragmentation in cereal roots indicative of programmed root cortical cell death. , 2001, Physiologia plantarum.
[50] M. Hawkesford,et al. Aerenchyma formation in roots of maize during sulphate starvation , 2003, Planta.
[51] L. A. Richards. Capillary conduction of liquids through porous mediums , 1931 .
[52] S. A. Barber,et al. A numerical solution of whole plant nutrient uptake for soil-root systems with root hairs , 1983, Plant and Soil.
[53] A. Burton. Phenotypic evaluation and genetic basis of anatomical and architectural root traits in the genus Zea , 2010 .
[54] J. Lynch,et al. Rhizoeconomics: Carbon costs of phosphorus acquisition , 2005, Plant and Soil.
[55] Takeshi Horie,et al. Leaf Nitrogen, Photosynthesis, and Crop Radiation Use Efficiency: A Review , 1989 .
[56] A. Ulrich,et al. Effects of potassium deficiency on the photosynthesis and respiration of leaves of sugar beet. , 1973, Plant physiology.
[57] Laj R. Ahuja,et al. Advances in Agricultural Systems Modeling , 2011 .
[58] Jonathan P. Lynch,et al. ROOT STRATEGIES FOR PHOSPHORUS ACQUISITION , 2008 .
[59] S. Strauss. Forest biotechnology – thriving despite controversy , 2004 .
[60] M. Drew,et al. Enhanced Sensitivity to Ethylene in Nitrogen- or Phosphate-Starved Roots of Zea mays L. during Aerenchyma Formation. , 1992, Plant physiology.
[61] J. Lynch,et al. Physiological roles for aerenchyma in phosphorus-stressed roots. , 2003, Functional plant biology : FPB.
[62] A. Schapendonk,et al. Evaluation of breeding strategies for drought tolerance in potato by means of crop growth simulation , 1990, Plant and Soil.
[63] B. Kindiger,et al. Variation for Root Aerenchyma Formation in Flooded and Non-Flooded Maize and Teosinte Seedlings , 2006, Plant and Soil.
[64] Kristian Borch,et al. Ethylene: a regulator of root architectural responses to soil phosphorus availability , 1999 .
[65] A. Soukup,et al. Aerenchyma formation in maize roots , 2009, Biologia Plantarum.
[66] J. Lynch,et al. Morphological synergism in root hair length, density, initiation and geometry for phosphorus acquisition in Arabidopsis thaliana: A modeling approach , 2001, Plant and Soil.