Modelling C3 and C4 photosynthesis under water-stressed conditions
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[1] C. Warren,et al. Soil water deficits decrease the internal conductance to CO2 transfer but atmospheric water deficits do not. , 2008, Journal of experimental botany.
[2] M. Flowers,et al. Optimizing the statistical estimation of the parameters of the Farquhar-von Caemmerer-Berry model of photosynthesis. , 2007, The New phytologist.
[3] Jaume Flexas,et al. Photosynthetic limitations in response to water stress and recovery in Mediterranean plants with different growth forms. , 2007, The New phytologist.
[4] J. Flexas,et al. Acclimation of Rubisco specificity factor to drought in tobacco: discrepancies between in vitro and in vivo estimations. , 2006, Journal of experimental botany.
[5] J. E. Fernández,et al. Modeling photosynthesis in olive leaves under drought conditions. , 2006, Tree physiology.
[6] J. Flexas,et al. Decreased Rubisco activity during water stress is not induced by decreased relative water content but related to conditions of low stomatal conductance and chloroplast CO2 concentration. , 2006, The New phytologist.
[7] 刘鹄,et al. “Ecohydrology of Water-controlled Ecosystems—Soil Moisture and Plant Dynamics”评介 , 2006 .
[8] J. Flexas,et al. Keeping a positive carbon balance under adverse conditions: responses of photosynthesis and respiration to water stress , 2006 .
[9] M. Adams,et al. Internal conductance does not scale with photosynthetic capacity: implications for carbon isotope discrimination and the economics of water and nitrogen use in photosynthesis. , 2006, Plant, cell & environment.
[10] T. Buckley,et al. The control of stomata by water balance. , 2005, The New phytologist.
[11] F. Magnani,et al. Stomatal, mesophyll conductance and biochemical limitations to photosynthesis as affected by drought and leaf ontogeny in ash and oak trees , 2005 .
[12] I. Rodríguez‐Iturbe,et al. Ecohydrology of Water-Controlled Ecosystems: Soil Moisture and Plant Dynamics , 2005 .
[13] H. Lambers,et al. Effect of soil drying on growth, biomass allocation and leaf gas exchange of two annual grass species , 1996, Plant and Soil.
[14] Josep Cifre,et al. Understanding down-regulation of photosynthesis under water stress: future prospects and searching for physiological tools for irrigation management , 2004 .
[15] I. Rodríguez‐Iturbe,et al. Coupled Dynamics of Photosynthesis, Transpiration, and Soil Water Balance. Part I: Upscaling from Hourly to Daily Level , 2004 .
[16] Amilcare Porporato,et al. Coupled Dynamics of Photosynthesis, Transpiration, and Soil Water Balance. Part II: Stochastic Analysis and Ecohydrological Significance , 2004 .
[17] T. Sharkey,et al. Diffusive and metabolic limitations to photosynthesis under drought and salinity in C(3) plants. , 2004, Plant biology.
[18] Nigel J. Livingston,et al. On the need to incorporate sensitivity to CO2 transfer conductance into the Farquhar–von Caemmerer–Berry leaf photosynthesis model , 2004 .
[19] A. Herrera,et al. Seasonal Changes in Photosynthesis and Stomatal Conductance of Five Plant Species from a Semiarid Ecosystem , 1998, Photosynthetica.
[20] G. Edwards,et al. Analysis of inhibition of photosynthesis due to water stress in the C3 species Hordeum vulgare and Vicia faba: Electron transport, CO2 fixation and carboxylation capacity , 1996, Photosynthesis Research.
[21] T. Sharkey,et al. Measurements of mesophyll conductance, photosynthetic electron transport and alternative electron sinks of field grown wheat leaves , 1994, Photosynthesis Research.
[22] J. Amthor. Scaling CO2-photosynthesis relationships from the leaf to the canopy , 1994, Photosynthesis Research.
[23] Thomas D. Sharkey,et al. An improved model of C3 photosynthesis at high CO2: Reversed O2 sensitivity explained by lack of glycerate reentry into the chloroplast , 1991, Photosynthesis Research.
[24] T. Sharkey,et al. Regulation of photosynthetic electron-transport in Phaseolus vulgaris L., as determined by room-temperature chlorophyll a fluorescence , 1988, Planta.
[25] N. C. Turner,et al. The responses of stomata and leaf gas exchange to vapour pressure deficits and soil water content , 1985, Oecologia.
[26] E. Schulze,et al. The responses of stomata and leaf gas exchange to vapour pressure deficits and soil water content , 1985, Oecologia.
[27] J. Berry,et al. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species , 1980, Planta.
[28] R. Sage,et al. Quo vadis C4? An ecophysiological perspective on global change and the future of C4 plants , 2004, Photosynthesis Research.
[29] R. Sage,et al. Photosynthetic pathway alters xylem structure and hydraulic function in herbaceous plants , 2003 .
[30] G. Farquhar,et al. A hydromechanical and biochemical model of stomatal conductance , 2003 .
[31] M. Paul,et al. Nonstomatal limitations are responsible for drought-induced photosynthetic inhibition in four C4 grasses. , 2003, The New phytologist.
[32] Ray Leuning,et al. A coupled model of stomatal conductance, photosynthesis and transpiration , 2003 .
[33] F. Loreto,et al. The use of low [CO2] to estimate diffusional and non‐diffusional limitations of photosynthetic capacity of salt‐stressed olive saplings , 2003 .
[34] G. Katul,et al. Relationship between plant hydraulic and biochemical properties derived from a steady‐state coupled water and carbon transport model , 2003 .
[35] Quo vadis C(4)? An ecophysiological perspective on global change and the future of C(4) plants. , 2003, Photosynthesis research.
[36] Xiwu Zhan,et al. An analytical approach for estimating CO2 and heat fluxes over the Amazonian region , 2003 .
[37] R. Dewar. The Ball–Berry–Leuning and Tardieu–Davies stomatal models: synthesis and extension within a spatially aggregated picture of guard cell function , 2002 .
[38] Weijun Shen,et al. A model of stomatal conductance to quantify the relationship between leaf transpiration, microclimate and soil water stress , 2002 .
[39] S. Driscoll,et al. Effects of water deficit and its interaction with CO(2) supply on the biochemistry and physiology of photosynthesis in sunflower. , 2002, Journal of experimental botany.
[40] D. Lawlor. Limitation to photosynthesis in water-stressed leaves: stomata vs. metabolism and the role of ATP. , 2002, Annals of botany.
[41] H. Griffiths,et al. Plant responses to water stress. , 2002, Annals of botany.
[42] P. J. Andralojc,et al. Rubisco activity: effects of drought stress. , 2002, Annals of botany.
[43] R. Oren,et al. Water deficits and hydraulic limits to leaf water supply. , 2002, Plant, cell & environment.
[44] D. Lawlor,et al. Photosynthetic carbon assimilation and associated metabolism in relation to water deficits in higher plants. , 2002, Plant, cell & environment.
[45] J. Flexas,et al. Drought-inhibition of photosynthesis in C3 plants: stomatal and non-stomatal limitations revisited. , 2002, Annals of botany.
[46] J. Conroy,et al. Root and shoot factors contribute to the effect of drought on photosynthesis and growth of the C4 grass Panicum coloratum at elevated CO2 partial pressures , 2001 .
[47] Luca Ridolfi,et al. Plants in water-controlled ecosystems: active role in hydrologic processes and response to water stress: III. Vegetation water stress , 2001 .
[48] Luca Ridolfi,et al. Plants in water-controlled ecosystems: active role in hydrologic processes and response to water stress: II. Probabilistic soil moisture dynamics , 2001 .
[49] D. Ellsworth,et al. Possible explanation of the disparity between the in vitro and in vivo measurements of Rubisco activity: a study in loblolly pine grown in elevated pCO2. , 2001, Journal of experimental botany.
[50] P. Pinter,et al. Carbon isotope discrimination by Sorghum bicolor under CO2 enrichment and drought , 2001 .
[51] G. Meehl,et al. Climate extremes: observations, modeling, and impacts. , 2000, Science.
[52] G. Cornic. Drought stress inhibits photosynthesis by decreasing stomatal aperture – not by affecting ATP synthesis , 2000 .
[53] S. V. Caemmerer,et al. Biochemical models of leaf photosynthesis. , 2000 .
[54] M. S. Islam,et al. Drought stress effects on water relations of wheat , 2000 .
[55] D. Tissue,et al. Comparative responses of model C3 and C4 plants to drought in low and elevated CO2 , 1999 .
[56] D. Lawlor,et al. Water stress inhibits plant photosynthesis by decreasing coupling factor and ATP , 1999, Nature.
[57] Jianhua Zhang,et al. Effects of water stress on photosystem II photochemistry and its thermostability in wheat plants , 1999 .
[58] David R. Easterling,et al. Changes in the Probability of Heavy Precipitation: Important Indicators of Climatic Change , 1999 .
[59] Robert T. Furbank,et al. 6 – Modeling C4 Photosynthesis , 1999 .
[60] David A. Wedin,et al. 10 – The Biogeography of C4 Photosynthesis: Patterns and Controlling Factors , 1999 .
[61] M. Plesničar,et al. Acclimation to long-term water deficit in the leaves of two sunflower hybrids: photosynthesis, electron transport and carbon metabolism , 1999 .
[62] Hans Lambers,et al. Plant Physiological Ecology , 2000, Springer New York.
[63] H. W. Hunt,et al. Photosynthetic pathway and ontogeny affect water relations and the impact of CO2 on Bouteloua gracilis (C4) and Pascopyrum smithii (C3) , 1998, Oecologia.
[64] James S. Clark,et al. Effects of climate and atmospheric CO2 partial pressure on the global distribution of C4 grasses: present, past, and future , 1998, Oecologia.
[65] François Tardieu,et al. Variability among species of stomatal control under fluctuating soil water status and evaporative demand: modelling isohydric and anisohydric behaviours , 1998 .
[66] Jianhua Zhang,et al. Effects of water stress on photosynthesis, chlorophyll fluorescence and photoinhibition in wheat plants , 1998 .
[67] I. C. Prentice,et al. An integrated biosphere model of land surface processes , 1996 .
[68] D. Randall,et al. A Revised Land Surface Parameterization (SiB2) for Atmospheric GCMS. Part I: Model Formulation , 1996 .
[69] C. Justice,et al. A Revised Land Surface Parameterization (SiB2) for Atmospheric GCMS. Part II: The Generation of Global Fields of Terrestrial Biophysical Parameters from Satellite Data , 1996 .
[70] A. Ouarzane,et al. Effect of Water Stress on Pyruvaté, Pi Dikinase and Phosphoenol Pyruvate Carboxylase Activities in the Leaves of Two Cultivars of Sorghum (Sorghum bicolor L.) , 1996 .
[71] Y. Kawamitsu,et al. Effects of Water Stress on Carbon Exchange Rate and Activities of Photosynthetic Enzymes in Leaves of Sugarcane (Saccharum Sp.) , 1996 .
[72] G. Edwards,et al. Analysis of Inhibition of Photosynthesis Under Water Stress in the C4 Species Amaranthus cruentus and Zea mays: Electron Transport, CO2 Fixation and Carboxylation Capacity , 1996 .
[73] F. Loreto,et al. Effect of Drought Stress on Photosynthetic Characteristics, Growth and Sugar Accumulation of Field-Grown Sweet Sorghum , 1996 .
[74] R. Leuning. A critical appraisal of a combined stomatal‐photosynthesis model for C3 plants , 1995 .
[75] D. Lawlor,et al. Effects of water deficit on photosynthesis , 1995 .
[76] N. Smirnoff,et al. Environment and plant metabolism: flexibility and acclimation. , 1995 .
[77] Michael B. Coughenour,et al. Mathematical simulation of C4 grass photosynthesis in ambient and elevated CO2 , 1994 .
[78] Stan D. Wullschleger,et al. Biochemical Limitations to Carbon Assimilation in C3 Plants—A Retrospective Analysis of the A/Ci Curves from 109 Species , 1993 .
[79] William J. Davies,et al. Integration of hydraulic and chemical signalling in the control of stomatal conductance and water status of droughted plants , 1993 .
[80] H. Griffiths. Carbon isotope discrimination , 1993 .
[81] J. Norman,et al. Leaf gas exchange of Andropogon gerardii Vitman, Panicum virgatum L., and Sorghastrum nutans (L.) Nash in a tallgrass prairie , 1992 .
[82] G. Edwards,et al. Relationship between photosystem II activity and CO2 fixation in leaves , 1992 .
[83] C. Giménez,et al. Regulation of Photosynthetic Rate of Two Sunflower Hybrids under Water Stress. , 1992, Plant physiology.
[84] G. Collatz,et al. Coupled Photosynthesis-Stomatal Conductance Model for Leaves of C4 Plants , 1992 .
[85] Y. Luo. Changes of c i c a in association with stomatal and non stomatal limitation to photosynthesis in water stressed abutilon theophrasti , 1991 .
[86] G. Collatz,et al. Physiological and environmental regulation of stomatal conductance, photosynthesis and transpiration: a model that includes a laminar boundary layer , 1991 .
[87] Maria Manuela Chaves,et al. Effects of Water Deficits on Carbon Assimilation , 1991 .
[88] J. Briantais,et al. The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence , 1989 .
[89] W. Kaiser,et al. Effects of water deficit on photosynthetic capacity , 1987 .
[90] Graham D. Farquhar,et al. An Empirical Model of Stomatal Conductance , 1984 .
[91] J. Ehleringer,et al. Comparative ecophysiology of C3 and C4 plants , 1984 .
[92] J. Ehleringer,et al. Variation in Quantum Yield for CO(2) Uptake among C(3) and C(4) Plants. , 1983, Plant physiology.
[93] A. Hanson,et al. Metabolic Responses of Mesophytes to Plant Water Deficits , 1982 .
[94] C. Federer,et al. Transpirational supply and demand: Plant, soil, and atmospheric effects evaluated by simulation , 1982 .
[95] J. Norman. SIMULATION OF MICROCLIMATES , 1982 .
[96] C. Osmond,et al. Physiological Plant Ecology I , 1981, Encyclopedia of Plant Physiology.
[97] P. Kemp,et al. A Physiological Basis for Niche Separation Between Agropyron Smithii (C3) and Bouteloua Gracilis (C4) , 1980 .
[98] I. R. Cowan,et al. Stomatal conductance correlates with photosynthetic capacity , 1979, Nature.
[99] J. O’toole,et al. Mesophyll Resistance and Carboxylase Activity: A Comparison under Water Stress Conditions. , 1976, Plant physiology.
[100] P. Jarvis. The Interpretation of the Variations in Leaf Water Potential and Stomatal Conductance Found in Canopies in the Field , 1976 .