The role of root architectural traits in adaptation of wheat to water-limited environments.
暂无分享,去创建一个
Peter deVoil | P. deVoil | G. Hammer | Graeme L Hammer | A. Manschadi | Ahmad M Manschadi | John Christopher | J. Christopher
[1] R. C. Muchow,et al. System Analysis of Plant Traits to Increase Grain Yield on Limited Water Supplies , 2001 .
[2] H. Poorter,et al. The role of biomass allocation in the growth response of plants to different levels of light, CO2, nutrients and water : a quantitative review , 2000 .
[3] E. A. Hurd. Growth of Roots of Seven Varieties of Spring Wheat at High and Low Moisture Levels1 , 1968 .
[4] R. Belford,et al. Root and Shoot Growth, and Water and Light Use Efficiency of Barley and Wheat Crops Grown on a Shallow Duplex Soil in a Mediterranean-type Environment , 1992 .
[5] J. Passioura. The effect of root geometry on the yield of wheat growing on stored water , 1972 .
[6] Alcalde Rovira Roure. Plant Breeding and Drought in C 3 Cereals: What Should We Breed For? , 2002 .
[7] R. C. Muchow,et al. Integrating physiological understanding and plant breeding via crop modelling and optimization. , 1996 .
[8] W. L. Bland,et al. Genotypic variation in crop plant root systems , 1987 .
[9] R. Richards,et al. Variation in temperate cereals in rainfed environments III. Water use and water-use efficiency , 1994 .
[10] J. T. Musick,et al. Root growth and water uptake in winter wheat under deficit irrigation , 2003, Plant and Soil.
[11] Paul L.G. Vlek,et al. Root Architecture—Wheat as a Model Plant , 2002 .
[12] A. Oyanagi,et al. The Direction of Growth of Seminal Roots of Triticum aestivum L. and Experimental Modification Thereof , 1994 .
[13] Hendrik Poorter,et al. The role of biomass allocation in the growth response of plants to different levels of light, CO2, nutrients and water: a quantitative review , 2000 .
[14] K. Fischer,et al. Selection for the improvement of maize yield under moisture-deficits , 1989 .
[15] R. Kuchenbuch,et al. Image analysis for non-destructive and non-invasive quantification of root growth and soil water content in rhizotrons , 2002 .
[16] R. Belford,et al. Root:shoot ratios of old and modern, tall and semi-dwarf wheats in a mediterranean environment , 2004, Plant and Soil.
[17] C. Kessel,et al. Selection of Rhizobium leguminosarum strains for lentil (Lens culinaris) under growth room and field conditions , 2004, Plant and Soil.
[18] Holger Meinke,et al. Improving wheat simulation capabilities in Australia from a cropping systems perspective II. Testing simulation capabilities of wheat growth , 1996 .
[19] R. Richards,et al. Breeding Opportunities for Increasing the Efficiency of Water Use and Crop Yield in Temperate Cereals. , 2002, Crop science.
[20] J. Monteith. How do crops manipulate water supply and demand? , 1986, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.
[21] R. Richards,et al. Variation in temperate cereals in rainfed environments I. Grain yield, biomass and agronomic characteristics , 1994 .
[22] A. G. Bengough,et al. Gel observation chamber for rapid screening of root traits in cereal seedlings , 2004, Plant and Soil.
[23] Graeme L. Hammer,et al. The role of physiological understanding in plant breeding; From a breeding perspective , 1996 .
[24] G. Hammer,et al. Potential yield and water-use efficiency benefits in sorghum from limited maximum transpiration rate. , 2005, Functional plant biology : FPB.
[25] Martin H. Entz,et al. Root System and Water Use Patterns of Different Height Sunflower Cultivars , 2002 .
[26] Graeme L. Hammer,et al. Soil exploration by sorghum root systems in wide row cropping systems , 2004 .
[27] Xiaolong Yan,et al. Effect of phosphorus availability on basal root shallowness in common bean , 2004, Plant and Soil.
[28] Graeme L. Hammer,et al. Water extraction by grain sorghum in a sub-humid environment. I. Analysis of the water extraction pattern , 1993 .
[29] R. C. Muchow,et al. Designing improved plant types for the semiarid tropics: agronomists’ viewpoints , 1993 .
[30] J. L. Dardanelli,et al. ROOTING DEPTH AND SOIL WATER EXTRACTION PATTERNS OF DIFFERENT CROPS IN A SILTY LOAM HAPLUSTOLL , 1997 .
[31] Graeme L. Hammer,et al. Improving Genotypic Adaptation in Crops – a Role for Breeders, Physiologists and Modellers , 1991, Experimental Agriculture.
[32] W. B.. Root Development of Field Crops , 1926, Nature.
[33] J. W. Maranville,et al. Evaluation of sorghum root branching using fractals , 1998, The Journal of Agricultural Science.
[34] D. Tennant,et al. The cost of stress: Dry matter partitioning changes with seasonal supply of water and nitrogen to dryland wheat , 1990, Plant and Soil.
[35] R. Aiken,et al. DYNAMIC ROOT RESPONSES TO WATER DEFICITS , 1992 .
[36] I. Bingham,et al. The management of wheat, barley, and oat root systems , 2001 .
[37] Peter J. Gregory,et al. PERFORMANCE OF THE APSIM-WHEAT MODEL IN WESTERN AUSTRALIA , 1998 .
[38] J. Passioura,et al. Roots and drought resistance , 1983 .
[39] Graeme L. Hammer,et al. Trait physiology and crop modelling as a framework to link phenotypic complexity to underlying genetic systems , 2005 .
[40] Holger Meinke,et al. Development of a generic crop model template in the cropping system model APSIM , 2002 .
[41] R. C. Muchow,et al. A critical evaluation of traits for improving crop yields in water-limited environments. , 1990 .
[42] A. Eshel,et al. Plant roots : the hidden half , 1991 .
[43] J. Lynch,et al. Root architectural tradeoffs for water and phosphorus acquisition. , 2005, Functional plant biology : FPB.
[44] J. Araus,et al. Plant breeding and drought in C3 cereals: what should we breed for? , 2002, Annals of botany.
[45] L O'Brien,et al. Genetic variability of root growth in wheat (Triticum aestivum L.) , 1979 .
[46] Senthold Asseng,et al. The new APSIM-Wheat Model: Performance and future improvements , 2003 .
[47] J. Passioura,et al. Soil structure and plant growth , 1991 .
[48] J. Ritchie,et al. Root growth and water uptake during water deficit and recovering in wheat , 1998, Plant and Soil.
[49] Holger Meinke,et al. Improving wheat simulation capabilities in Australia from a cropping systems perspective III. The integrated wheat model (I_WHEAT) , 1998 .
[50] Alastair H. Fitter,et al. Characteristics and Functions of Root Systems , 2002 .
[51] E. A. Hurd. Phenotype and Drought Tolerance in Wheat , 1975 .
[52] A. Oyanagi. Gravitropic response growth angle and vertical distribution of roots of wheat (Triticum aestivum L.) , 1994, Plant and Soil.
[53] N. Huth,et al. Simulation of growth and development of diverse legume species in APSIM , 2002 .
[54] Paul Teng,et al. Systems approaches for agricultural development , 1993, Systems Approaches for Sustainable Agricultural Development.
[55] John R. Madden,et al. The impact of the 2002–2003 drought on Australia , 2005 .
[56] J. Passioura,et al. Increasing crop productivity when water is scarce--from breeding to field management , 2006 .
[57] John Gorham,et al. Upland rice grown in soil-filled chambers and exposed to contrasting water-deficit regimes. I. Root distribution, water use and plant water status , 2002 .
[58] Senthold Asseng,et al. An overview of APSIM, a model designed for farming systems simulation , 2003 .
[59] K. Basford,et al. Genotype-by-management interactions for grain yield and grain protein concentration of wheat , 2001 .
[60] S. Fukai,et al. Screening for drought resistance in rainfed lowland rice , 1999 .
[61] Greg J. Rebetzke,et al. Genetic improvement of early vigour in wheat , 1999 .
[62] Holger Meinke,et al. Improving wheat simulation capabilities in Australia from a cropping systems perspective: water and nitrogen effects on spring wheat in a semi-arid environment , 1997 .
[63] Matthew P. Reynolds,et al. Physiological and Genetic Changes of Irrigated Wheat in the Post–Green Revolution Period and Approaches for Meeting Projected Global Demand , 1999 .
[64] Chris Smith,et al. Modelling the growth and water uptake function of plant root systems: a review , 2004 .
[65] Roger Sylvester-Bradley,et al. Modelling cereal root systems for water and nitrogen capture: towards an economic optimum. , 2003, Annals of botany.
[66] G. Hammer,et al. Using crop simulation to generate genotype by environment interaction effects for sorghum in water-limited environments , 2002 .
[67] M. Reynolds,et al. Photosynthesis of wheat in a warm, irrigated environment: I: Genetic diversity and crop productivity , 2000 .
[68] J. Palta,et al. Early vigorous growth is a major factor influencing nitrogen uptake in wheat. , 2004, Functional plant biology : FPB.
[69] R. Richards,et al. Physiological traits used in the breeding of new cultivars for water-scarce environments. , 2006 .
[70] J. Ribaut,et al. Molecular approaches for the genetic improvement of cereals for stable production in water-limited environments , 2000 .
[71] R. A. Fischer,et al. Wheat Yield Progress Associated with Higher Stomatal Conductance and Photosynthetic Rate, and Cooler Canopies , 1998 .
[72] John Angus,et al. Increasing Water Use and Water Use Efficiency in Dryland Wheat , 2001 .
[73] J. Lynch. Root Architecture and Plant Productivity , 1995, Plant physiology.
[74] Mervyn G. Marasinghe,et al. SAS System for Linear Models , 1991 .
[75] Holger Meinke,et al. Potential soil water extraction by sunflower on a range of soils , 1993 .
[76] Graeme L. Hammer,et al. Future contributions of crop modelling—from heuristics and supporting decision making to understanding genetic regulation and aiding crop improvement , 2002 .
[77] R. Richards,et al. A Breeding Program to Reduce the Diameter of the Major Xylem Vessel in the Seminal Roots of Wheat and its Effect on Grain Yield in Rain-fed Environments , 1989 .