Root Functional Architecture: A Framework for Modeling the Interplay between Roots and Soil
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Loïc Pagès | Francois Bastardie | Claude Doussan | Yvan Capowiez | L. Pagès | C. Doussan | Y. Capowiez | A. Pierret | Francois Bastardie | Alain Pierret
[1] Angela Hodge,et al. The plastic plant: root responses to heterogeneous supplies of nutrients , 2004 .
[2] J. Passioura,et al. Increasing crop productivity when water is scarce--from breeding to field management , 2006 .
[3] G. Brown. How do earthworms affect microfloral and faunal community diversity , 1995 .
[4] L. Saker,et al. Nutrient Supply and the Growth of the Seminal Root System in Barley I. THE EFFECT OF NITRATE CONCENTRATION ON THE GROWTH OF AXES AND LATERALS , 1973 .
[5] P. Lavelle. Faunal Activities and Soil Processes: Adaptive Strategies That Determine Ecosystem Function , 1997 .
[6] D. Atkinson,et al. Vesicular-arbuscular mycorrhizal fungi induced alteration in poplar root system morphology , 1992, Plant and Soil.
[7] K. E. Lee,et al. Soil fauna and soil structure , 1991 .
[8] L. Saker,et al. Nutrient Supply and the Growth of the Seminal Root System in Barley II. LOCALIZED, COMPENSATORY INCREASES IN LATERAL ROOT GROWTH AND RATES OP NITRATE UPTAKE WHEN NITRATE SUPPLY IS RESTRICTED TO ONLY PART OF THE ROOT SYSTEM , 1975 .
[9] W. A. Cannon,et al. A Tentative Classification of Root Systems , 1949 .
[10] T. Lundborg,et al. Growth and development of seminal and crown root systems in N-limited barley, and their contributions to nitrate acquisition during vegetative and generative growth , 1993, Plant and Soil.
[11] Peter J. Gregory,et al. Rhizosphere geometry and heterogeneity arising from root-mediated physical and chemical processes. , 2005, The New phytologist.
[12] D. Focht. Nature and Origin of Carbohydrates in Soils , 1981 .
[13] M. Redinbaugh,et al. Localization of Nitrate Absorption and Translocation within Morphological Regions of the Corn Root. , 1992, Plant physiology.
[14] B. Griffiths,et al. Plant root proliferation in nitrogen–rich patches confers competitive advantage , 1999, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[15] J. Augustin,et al. Plant rhizodeposition — an important source for carbon turnover in soils , 2002 .
[16] G. Ponce,et al. Root Caps and Rhizosphere , 2002, Journal of Plant Growth Regulation.
[17] Loïc Pagès,et al. An improved method to measure spatial variation in root respiration: application to the taproot of a young peach tree Prunus persica , 2001 .
[18] L. Pagès,et al. A simulation model of the three-dimensional architecture of the maize root system , 1989, Plant and Soil.
[19] P. Darrah. The rhizosphere and plant nutrition: a quantitative approach , 1993, Plant and Soil.
[20] A. J. Diggle,et al. ROOTMAP—a model in three-dimensional coordinates of the growth and structure of fibrous root systems , 1988, Plant and Soil.
[21] A. Hodge,et al. Plastic plants and patchy soils. , 2006, Journal of experimental botany.
[22] Loïc Pagès,et al. MODELLING OF THE HYDRAULIC ARCHITECTURE OF ROOT SYSTEMS : AN INTEGRATED APPROACH TO WATER ABSORPTION : MODEL DESCRIPTION , 1998 .
[23] A. T. P. Bennie,et al. Growth and mechanical impedance , 1991 .
[24] Claude Doussan,et al. Water Uptake by Plant Roots: I – Formation and Propagation of a Water Extraction Front in Mature Root Systems as Evidenced by 2D Light Transmission Imaging , 2006, Plant and Soil.
[25] J. Goksøyr,et al. Effects of water fluctuations on microbial mass and activity in soil , 1980, Microbial Ecology.
[26] Keith R. Skene. Cluster Roots: Their Physiology, Ecology and Developmental Biology , 2000 .
[27] M. Ghodrati,et al. Transport of Nitrate in Soils as Affected by Earthworm Activities , 1995 .
[28] M. Canny,et al. Development of water conducting capacity in the root systems of young plants of corn and some other c4 grasses. , 1989, Plant physiology.
[29] M. Mccully,et al. ROOTS IN SOIL: Unearthing the Complexities of Roots and Their Rhizospheres. , 1999, Annual review of plant physiology and plant molecular biology.
[30] Johan Bouma,et al. Influence of Soil Macroporosity on Environmental Quality , 1991 .
[31] E. Steudle,et al. Water uptake by roots: effects of water deficit. , 2000, Journal of experimental botany.
[32] D. Marshall Porterfield,et al. Use of Microsensors for Studying the Physiological Activity of Plant Roots , 2002 .
[33] J A Raven,et al. Roots: evolutionary origins and biogeochemical significance. , 2001, Journal of experimental botany.
[34] Jonathan P Lynch,et al. The importance of root gravitropism for inter-root competition and phosphorus acquisition efficiency: results from a geometric simulation model , 2004, Plant and Soil.
[35] M. Watt,et al. Formation and Stabilization of Rhizosheaths of Zea mays L. (Effect of Soil Water Content) , 1994, Plant physiology.
[36] P. Sale,et al. The influence of the soil matrix on nitrogen mineralisation and nitrification V. Microporosity and manganese , 1999 .
[37] Xiaolong Yan,et al. Effect of phosphorus availability on basal root shallowness in common bean. , 2001 .
[38] W. Edwards,et al. Water and nitrate movement in earthworm burrows within long-term no-till cornfields , 1989 .
[39] François Tardieu,et al. Modeling root water potential and soil-root water transport. I. Model presentation , 1991 .
[40] R. Lal,et al. Soil Processes and Water Quality , 1994, Soil Processes and Water Quality.
[41] A. Rovira. Interactions between plant roots and soil microorganisms. , 1965, Annual review of microbiology.
[42] S. Polasky,et al. Agricultural sustainability and intensive production practices , 2002, Nature.
[43] J. D'auzac,et al. Solubilization and Reconstitution of the Mg2+/2H+ Antiporter of the Lutoid Tonoplast from Hevea brasiliensis Latex , 1994, Plant physiology.
[44] E. C. Berry,et al. Microbial nitrogen transformations in earthworm burrows , 1999 .
[45] François Tardieu,et al. Modelling Root System Architecture: Experimental Data on Maize Root System Geometry , 1991 .
[46] J. M. Kirby,et al. Microbiological and chemical properties of soil associated with macropores at different depths in a red-duplex soil in NSW Australia , 2004, Plant and Soil.
[47] Claude Doussan,et al. Observing plant roots in their environment: current imaging options and specific contribution of two-dimensional approaches , 2003 .
[48] F. Tardieu,et al. Plant response to the soil water reserve: Consequences of the root system environment , 1991, Irrigation Science.
[49] Cristina Cruz,et al. Uptake regions of inorganic nitrogen in roots of carob seedlings , 1995 .
[50] A. Rovira,et al. Ultrastructure of the root-soil interface , 1983 .
[51] M. Canny,et al. Rates of water uptake into the mature root system of maize plants , 1993 .
[52] S. Strauss. Forest biotechnology – thriving despite controversy , 2004 .
[53] Betty Klepper,et al. Development and Growth of Crop Root Systems , 1992 .
[54] François Tardieu,et al. Modeling Root Water Potential and Soil‐Root Water Transport: II. Field Comparisons , 1991 .
[55] B. Forde,et al. The nutritional control of root development , 2001 .
[56] Philippe Hinsinger,et al. How Do Plant Roots Acquire Mineral Nutrients? Chemical Processes Involved in the Rhizosphere , 1998 .
[57] J. Tisdall. Fungal hyphae and structural stability of soil , 1991 .
[58] C. Chenu,et al. The role of roots, fungi and bacteria on clay particle organization. An experimental approach , 1993 .
[59] P W Barlow,et al. Dual pathways for regulation of root branching by nitrate. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[60] J. Satchell. Earthworm Ecology: From Darwin to Vermiculture , 1983 .
[61] B. Forde,et al. The nutritional control of root development , 2001, Plant and Soil.
[62] I. Bingham,et al. The management of wheat, barley, and oat root systems , 2001 .
[63] C. Moran,et al. Differentiation of soil properties related to the spatial association of wheat roots and soil macropores , 2004, Plant and Soil.
[64] J. Fargione,et al. Supply pre-emption, not concentration reduction, is the mechanism of competition for nutrients. , 2005, The New phytologist.
[65] J. Germida,et al. Distribution of microbial biomass and its activity in different soil aggregate size classes as affected by cultivation , 1988 .
[66] J. B. Passioura,et al. Soil structure and plant growth: Impact of bulk density and biopores , 1996, Plant and Soil.
[67] S. Wright,et al. Roots And Soil Management: Interactions Between Roots And the Soil , 2005 .
[68] J. Anderson,et al. Spatiotemporal effects of invertebrates on soil processes , 1988, Biology and Fertility of Soils.
[69] Loïc Pagès,et al. Root System Development of Oak Seedlings Analysed using an Architectural Model. Effects of Competition with Grass , 2005, Plant and Soil.
[70] R. Zobel. Fine roots - discarding flawed assumptions. , 2003, The New phytologist.
[71] A. Rovira,et al. The Ultrastructure of the Rhizosphere of Trifolium subterraneum L. , 1978 .
[72] R. Zobel. Tertiary Root Systems , 2005 .
[73] J. Hatfield,et al. Limitations to Plant Root Growth , 2011, Advances in Soil Science.
[74] Loïc Pagès,et al. Water Uptake by Plant Roots: II – Modelling of Water Transfer in the Soil Root-system with Explicit Account of Flow within the Root System – Comparison with Experiments , 2006, Plant and Soil.
[75] A. Dexter. Compression of soil around roots , 1987, Plant and Soil.
[76] A. Eshel,et al. Differences in ion uptake among roots of various types , 1992 .
[77] Daniel P. Rasse,et al. Root recolonization of previous root channels in corn and alfalfa rotations , 1998, Plant and Soil.
[78] M. Hutchings,et al. The effects of environmental heterogeneity on root growth and root/shoot partitioning. , 2004, Annals of botany.
[79] A. Eshel,et al. Functional Diversity of Various Constituents of a Single Root System , 2002 .
[80] Christophe,et al. Rhizodeposition of organic C by plants: mechanisms and controls , 2003 .
[81] A. Diggle,et al. Modelling the interactions between water and nutrient uptake and root growth , 2002, Plant and Soil.
[82] P. Sale,et al. The influence of the soil matrix on nitrogen mineralisation and nitrification III. Predictive utility of traditional variables and process location within the pore system , 1999 .
[83] Loïc Pagès,et al. Root system architecture: from its representation to the study of its elaboration , 1999 .
[84] J. Harper,et al. evolution of roots and the problems of analysing their behaviour , 1991 .
[85] M. Drew,et al. COMPARISON OF THE EFFECTS OF A LOCALISED SUPPLY OF PHOSPHATE, NITRATE, AMMONIUM AND POTASSIUM ON THE GROWTH OF THE SEMINAL ROOT SYSTEM, AND THE SHOOT, IN BARLEY , 1975 .
[86] A. Diggle,et al. Simulation of field data by a basic three-dimensional model of interactive root growth , 2002, Plant and Soil.
[87] M. Mccully,et al. How Do Real Roots Work? (Some New Views of Root Structure) , 1995, Plant physiology.
[88] D. Robinson,et al. Variation, co-ordination and compensation in root systems in relation to soil variability , 1996, Plant and Soil.
[89] F. Tardieu,et al. Caractérisation en tant que capteur d'eau de l'enracinement du maïs en parcelle cultivée. I: Discussion des critères d'étude , 1986 .
[90] Peter J. Gregory. Roots, rhizosphere and soil: the route to a better understanding of soil science? , 2006 .
[91] Loïc Pagès,et al. Water uptake by two contrasting root systems (maize, peach tree): results from a model of hydraulic architecture , 1999 .
[92] S. Scheu,et al. Microbial respiration, biomass, biovolume and nutrient status in burrow walls of Lumbricus terrestris L. (Lumbricidae) , 1999 .
[93] K. Volkmar. Effects of biopores on the growth and N-uptake of wheat at three levels of soil moisture , 1996 .
[94] Y. Capowiez,et al. A new simulation for modelling the topology of earthworm burrow systems and their effects on macropore flow in experimental soils , 2002, Biology and Fertility of Soils.
[95] C. Ramsey,et al. Rapid Turnover of Hyphae of Mycorrhizal Fungi Determined by AMS Microanalysis of 14C , 2003, Science.
[96] Annamaria Castrignanò,et al. 3D spatial variability of soil strength and its change over time in a durum wheat field in Southern Italy , 2002 .
[97] Przemyslaw Prusinkiewicz,et al. Modeling of spatial structure and development of plants: a review , 1998 .
[98] J. Tisdall,et al. Organic matter and water‐stable aggregates in soils , 1982 .
[99] Claude Doussan,et al. Modelling of the Hydraulic Architecture of Root Systems: An Integrated Approach to Water Absorption—Distribution of Axial and Radial Conductances in Maize , 1998 .
[100] H. Marschner. Mineral Nutrition of Higher Plants , 1988 .
[101] A. Eshel,et al. Plant roots : the hidden half , 1991 .
[102] C. Chenu. Clay- or sand-polysaccharide associations as models for the interface between micro-organisms and soil: water related properties and microstructure , 1993 .
[103] J. Kirkegaard,et al. Subsoil amelioration by plant roots : the process and the evidence , 1995 .
[104] J. Hopmans,et al. Simultaneous modeling of transient three-dimensional root growth and soil water flow , 1994, Plant and Soil.
[105] K. Volkmar,et al. Water stressed nodal roots of wheat : Effects on leaf growth , 1997 .
[106] D. Robinson,et al. Root proliferation, nitrate inflow and their carbon costs during nitrogen capture by competing plants in patchy soil , 2001, Plant and Soil.
[107] A. Noble,et al. Roots of Stylosanthes hamata create macropores in the compact layer of a sandy soil , 2004, Plant and Soil.
[108] R. C. Foster. Microenvironments of soil microorganisms , 1988, Biology and Fertility of Soils.
[109] 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.
[110] A. R. Dexter,et al. Mechanics of root growth , 1987, Plant and Soil.
[111] François Tardieu,et al. Caractérisation en tant que capteur d'eau de l'enracinement du maïs en parcelle cultivée. II. - Une méthode d'étude de la répartition verticale et horizontale des racines , 1986 .
[112] Richard W. Zobel,et al. Differential root morphology response to no versus high phosphorus, in three hydroponically grown forage chicory cultivars , 2006 .
[113] Takahisa Mizuyama,et al. Root-system development and water-extraction model considering hydrotropism , 2003 .
[114] W. A. Cannon. THE ECOLOGICAL RELATIONS OF ROOTS. , 1920, Science.
[115] D. Robinson. The responses of plants to non-uniform supplies of nutrients. , 1994, The New phytologist.
[116] C. Moran,et al. Macropore sheath: quantification of plant root and soil macropore association , 2004, Plant and Soil.
[117] W. Beyschlag,et al. Aggregative Root Placement: A Feature During Interspecific Competition in Inland Sand-Dune Habitats , 2006, Plant and Soil.
[118] F. Tardieu,et al. Analysis of the spatial variability of maize root density , 1988, Plant and Soil.
[119] G. B. Schaalje,et al. Chemical and biochemical changes in the rhizospheres of wheat and canola , 1995 .
[120] Loïc Pagès,et al. Modelling Root System Growth and Architecture , 2000 .
[121] S. Recous,et al. Carbon, nitrogen and microbial gradients induced by plant residues decomposing in soil , 1999 .
[122] Ottoline Leyser,et al. Roots are branching out in patches , 1998 .
[123] P. Sale,et al. The influence of the soil matrix on nitrogen mineralisation and nitrification. II. The pore system as a framework for mapping the organisation of the soil matrix , 1998 .
[124] P. Lavelle,et al. Earthworm activities and the soil system , 2004, Biology and Fertility of Soils.
[125] S. Subler,et al. Deep-burrowing earthworm additions changed the distribution of soil organic carbon in a chisel-tilled soil , 2001 .
[126] W. R. Whalley,et al. Biological effects of soil compaction , 1995 .
[127] J. Crawford,et al. Spatial distribution of bacterial communities and their relationships with the micro-architecture of soil. , 2003, FEMS microbiology ecology.
[128] B. Nicoullaud,et al. Backscattered electron scanning images of soil porosity for analyzing soil compaction around roots , 1996 .
[129] Lore Kutschera,et al. Wurzelatlas mitteleuropäischer Ackerunkräuter und Kulturpflanzen , 1960 .