Resource Allocation and Trade-Offs in Carbon Gain of Leaves Under Changing Environment
暂无分享,去创建一个
[1] J. Tenhunen,et al. Modeling the Photosynthetic Response of C3 Leaves to Environmental Factors , 2015 .
[2] M. Werger,et al. Optimal use of leaf nitrogen explains seasonal changes in leaf nitrogen content of an understorey evergreen shrub. , 2011, Annals of botany.
[3] K. Hikosaka. Mechanisms underlying interspecific variation in photosynthetic capacity across wild plant species , 2010 .
[4] K. Hikosaka,et al. Effects of atmospheric CO2 concentration, irradiance, and soil nitrogen availability on leaf photosynthetic traits of Polygonum sachalinense around natural CO2 springs in northern Japan , 2010, Oecologia.
[5] Akihiko Ito,et al. Changing ecophysiological processes and carbon budget in East Asian ecosystems under near-future changes in climate: implications for long-term monitoring from a process-based model , 2010, Journal of Plant Research.
[6] K. Hikosaka,et al. Phenotypic Plasticity in Photosynthetic Temperature Acclimation among Crop Species with Different Cold Tolerances1[W][OA] , 2009, Plant Physiology.
[7] M. Werger,et al. The leaf anatomy of a broad-leaved evergreen allows an increase in leaf nitrogen content in winter. , 2009, Physiologia plantarum.
[8] K. Hikosaka,et al. Cold-tolerant crop species have greater temperature homeostasis of leaf respiration and photosynthesis than cold-sensitive species. , 2009, Plant & cell physiology.
[9] K. Hikosaka,et al. Costs and benefits of photosynthetic light acclimation by tree seedlings in response to gap formation , 2008, Oecologia.
[10] N. Kelly,et al. Within-canopy nitrogen and photosynthetic gradients are unaffected by soil fertility in field-grown Eucalyptus globulus. , 2007, Tree physiology.
[11] K. Hikosaka,et al. Seasonal changes in the temperature response of photosynthesis in canopy leaves of Quercus crispula in a cool-temperate forest. , 2007, Tree physiology.
[12] K. Hikosaka,et al. Leaf anatomy and light acclimation in woody seedlings after gap formation in a cool-temperate deciduous forest , 2006, Oecologia.
[13] Cassia F. Read,et al. Gradients of light availability and leaf traits with leaf age and canopy position in 28 Australian shrubs and trees. , 2006, Functional plant biology : FPB.
[14] K. Hikosaka,et al. The balance between RuBP carboxylation and RuBP regeneration: a mechanism underlying the interspecific variation in acclimation of photosynthesis to seasonal change in temperature. , 2005, Functional plant biology : FPB.
[15] K. Hikosaka. Nitrogen partitioning in the photosynthetic apparatus of Plantago asiatica leaves grown under different temperature and light conditions: similarities and differences between temperature and light acclimation. , 2005, Plant & cell physiology.
[16] K. Hikosaka,et al. Leaf anatomy as a constraint for photosynthetic acclimation: differential responses in leaf anatomy to increasing growth irradiance among three deciduous trees , 2005 .
[17] K. Hikosaka,et al. Nitrogen resorption from leaves under different growth irradiance in three deciduous woody species , 2005, Plant Ecology.
[18] O. Kull,et al. Adjustment of leaf photosynthesis to shade in a natural canopy: Rate parameters , 2005 .
[19] Olevi Kull,et al. Adjustment of leaf photosynthesis to shade in a natural canopy: reallocation of nitrogen , 2005 .
[20] K. Hikosaka,et al. Seasonal changes in light and temperature affect the balance between light harvesting and light utilisation components of photosynthesis in an evergreen understory shrub , 2005, Oecologia.
[21] S. Long,et al. What have we learned from 15 years of free-air CO2 enrichment (FACE)? A meta-analytic review of the responses of photosynthesis, canopy properties and plant production to rising CO2. , 2004, The New phytologist.
[22] K. Hikosaka. Interspecific difference in the photosynthesis–nitrogen relationship: patterns, physiological causes, and ecological importance , 2004, Journal of Plant Research.
[23] A. Rogers,et al. Rising atmospheric carbon dioxide: plants FACE the future. , 2004, Annual review of plant biology.
[24] Tadaki Hirose,et al. Does the photosynthetic light-acclimation need change in leaf anatomy? , 2003 .
[25] Kihachiro Kikuzawa,et al. Phenological and morphological adaptations to the light environment in two woody and two herbaceous plant species , 2003 .
[26] Ü. Niinemets,et al. Site fertility and the morphological and photosynthetic acclimation of Pinus sylvestris needles to light. , 2001, Tree physiology.
[27] M. Adams,et al. Distribution of N, Rubisco and photosynthesis in Pinus pinaster and acclimation to light , 2001 .
[28] Dennis D. Baldocchi,et al. Leaf age affects the seasonal pattern of photosynthetic capacity and net ecosystem exchange of carbon in a deciduous forest , 2001 .
[29] I. Terashima,et al. Why are Sun Leaves Thicker than Shade Leaves? — Consideration based on Analyses of CO2 Diffusion in the Leaf , 2001, Journal of Plant Research.
[30] A. Ishida,et al. Acclimation to sudden increase in light favoring an invasive over native trees in subtropical islands, Japan , 2000, Oecologia.
[31] Dennis D. Baldocchi,et al. Spatial and seasonal variability of photosynthetic parameters and their relationship to leaf nitrogen in a deciduous forest. , 2000, Tree physiology.
[32] P. De Angelis,et al. Effects of elevated (CO2) on photosynthesis in European forest species: a meta-analysis of model parameters , 1999 .
[33] K. Hikosaka,et al. Balancing carboxylation and regeneration of ribulose‐1,5‐ bisphosphate in leaf photosynthesis: temperature acclimation of an evergreen tree, Quercus myrsinaefolia , 1999 .
[34] K. Hikosaka,et al. Light acquisition and use by individuals competing in a dense stand of an annual herb, Xanthium canadense , 1999, Oecologia.
[35] K. Hikosaka,et al. Photosynthetic nitrogen‐use efficiency in leaves of woody and herbaceous species , 1998 .
[36] Olevi Kull,et al. An analysis of light effects on foliar morphology, physiology, and light interception in temperate deciduous woody species of contrasting shade tolerance. , 1998, Tree physiology.
[37] K. Hikosaka,et al. Leaf and canopy photosynthesis of C3 plants at elevated CO2 in relation to optimal partitioning of nitrogen among photosynthetic components: theoretical prediction , 1998 .
[38] K. Hikosaka. Modelling Optimal Temperature Acclimation of the Photosynthetic Apparatus in C3Plants with Respect to Nitrogen Use , 1997 .
[39] S. Naidu,et al. Growth, Allocation and Water Relations of Shade-grown Quercus rubra L. Saplings Exposed to a Late-season Canopy Gap , 1997 .
[40] Ü. Niinemets. Role of foliar nitrogen in light harvesting and shade tolerance of four temperate deciduous woody species , 1997 .
[41] N. Yamamoto,et al. Does Decrease in Ribulose-1,5-Bisphosphate Carboxylase by Antisense RbcS Lead to a Higher N-Use Efficiency of Photosynthesis under Conditions of Saturating CO2 and Light in Rice Plants? , 1997, Plant physiology.
[42] K. Hikosaka,et al. Nitrogen partitioning among photosynthetic components and its consequence in sun and shade plants , 1996 .
[43] Dennis D. Baldocchi,et al. Scaling carbon dioxide and water vapour exchange from leaf to canopy in a deciduous forest. II. Model testing and application , 1995 .
[44] Ichiro Terashima,et al. Comparative ecophysiology of leaf and canopy photosynthesis , 1995 .
[45] Ichiro Terashima,et al. A model of the acclimation of photosynthesis in the leaves of C3 plants to sun and shade with respect to nitrogen use , 1995 .
[46] M. Werger,et al. Patterns of light and nitrogen distribution in relation to whole canopy carbon gain in C3 and C4 mono- and dicotyledonous species , 1995, Oecologia.
[47] D. Ackerly,et al. Leaf dynamics, self-shading and carbon gain in seedlings of a tropical pioneer tree , 1995, Oecologia.
[48] Ichiro Terashima,et al. Effects of leaf age, nitrogen nutrition and photon flux density on the distribution of nitrogen among leaves of a vine (Ipomoea tricolor Cav.) grown horizontally to avoid mutual shading of leaves , 1994, Oecologia.
[49] S. Long,et al. Acclimation of photosynthetic proteins to rising atmospheric CO2 , 1994, Photosynthesis Research.
[50] R. Sage. Acclimation of photosynthesis to increasing atmospheric CO2: The gas exchange perspective , 1994, Photosynthesis Research.
[51] P. Reich,et al. Canopy structure and vertical patterns of photosynthesis and related leaf traits in a deciduous forest , 1993, Oecologia.
[52] B. Ulrich,et al. Temperate deciduous forests , 1992 .
[53] D. Sims,et al. Response of leaf anatomy and photosynthetic capacity in Alocasia macrorrhiza (Araceae) to a transfer from low to high light. , 1992 .
[54] Lewis H. Ziska,et al. Potential effects of elevated CO2 and changes in temperature on tropical plants , 1991 .
[55] Graham D. Farquhar,et al. Models of Integrated Photosynthesis of Cells and Leaves , 1989 .
[56] M. Werger,et al. Canopy structure and leaf nitrogen distribution in a stand of Lysimachia vulgaris L. as influenced by stand density , 1988, Oecologia.
[57] M. Werger,et al. Maximizing daily canopy photosynthesis with respect to the leaf nitrogen allocation pattern in the canopy , 1987, Oecologia.
[58] Tadaki Hirose,et al. Nitrogen use efficiency in instantaneous and daily photosynthesis of leaves in the canopy of a Solidago altissima stand , 1987 .
[59] T. W. Jurik. Temporal and spatial patterns of specific leaf weight in successional northern hardwood tree species , 1986 .
[60] T. Dejong,et al. Seasonal relationships between leaf nitrogen content (photosynthetic capacity) and leaf canopy light exposure in peach (Prunus persica) , 1985 .
[61] T. Hirose. Nitrogen Use Efficiency in Growth of Polygonum cuspidatum Sieb. et Zucc , 1984 .
[62] A. Makino,et al. Photosynthesis and Ribulose 1,5-Bisphosphate Carboxylase in Rice Leaves: Changes in Photosynthesis and Enzymes Involved in Carbon Assimilation from Leaf Development through Senescence. , 1983, Plant physiology.
[63] J. R. Evans,et al. Nitrogen and Photosynthesis in the Flag Leaf of Wheat (Triticum aestivum L.). , 1983, Plant physiology.
[64] C. Field,et al. Allocating leaf nitrogen for the maximization of carbon gain: Leaf age as a control on the allocation program , 1983, Oecologia.
[65] G. Farquhar,et al. Some relationships between the biochemistry of photosynthesis and the gas exchange of leaves , 1981, Planta.
[66] J. Berry,et al. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species , 1980, Planta.
[67] J. Verbelen,et al. LEAF DEVELOPMENT OF PHASEOLUS VULGARIS L. IN LIGHT AND IN DARKNESS , 1979 .
[68] N. Boardman. Comparative photosynthesis of sun and shade plants. , 1977 .
[69] W. Smith,et al. Relation between Mesophyll Surface Area, Photosynthetic Rate, and Illumination Level during Development for Leaves of Plectranthus parviflorus Henckel. , 1975, Plant physiology.
[70] F. Milthorpe,et al. Studies on the Expansion of the Leaf Surface: III. THE INFLUENCE OF RADIATION ON CELL DIVISION AND LEAF EXPANSION , 1963 .
[71] C. Wallace-Crabbe. In Light and Darkness , 1963 .
[72] J. Mcclendon. THE RELATIONSHIP BETWEEN THE THICKNESS OF DECIDUOUS LEAVES AND THEIR MAXIMUM PHOTOSYNTHETIC RATE , 1962 .
[73] Y. Chiba,et al. Seasonal and spatial variations in leaf nitrogen content and resorption in a Quercus serrata canopy. , 2007, Tree physiology.
[74] K. Hikosaka,et al. Temperature acclimation of photosynthesis: mechanisms involved in the changes in temperature dependence of photosynthetic rate. , 2006, Journal of experimental botany.
[75] S. Naidu,et al. Physiological and morphological acclimation of shade-grown tree seedlings to late-season canopy gap formation , 2004, Plant Ecology.
[76] J. R. Evans. Photosynthesis and nitrogen relationships in leaves of C3 plants , 2004, Oecologia.
[77] D. Doley,et al. The dynamics of photosynthetic acclimation to changes in light quanlity and quality in three Australian rainforest tree species , 2004, Oecologia.
[78] A. Verhoef,et al. Leaf development and canopy growth , 2000 .
[79] F. S. Chapin,et al. The Mineral Nutrition of Wild Plants Revisited: A Re-evaluation of Processes and Patterns , 1999 .
[80] K. Hikosaka,et al. Leaf nitrogen distribution in relation to leaf age and photon flux density in dominant and subordinate plants in dense stands of a dicotyledonous herb , 1998, Oecologia.
[81] B. Medlyn. The Optimal Allocation of Nitrogen Within the C3 Photosynthetic System at Elevated CO2 , 1996 .
[82] J. R. Evans,et al. The Relationship Between CO2 Transfer Conductance and Leaf Anatomy in Transgenic Tobacco With a Reduced Content of Rubisco , 1994 .
[83] J. R. Evans. Photosynthetic Acclimation and Nitrogen Partitioning Within a Lucerne Canopy. I. Canopy Characteristics , 1993 .
[84] R. Loomis,et al. Modeling crop photosynthesis - from biochemistry to canopy. , 1991 .
[85] John R. Evans,et al. Determination of the Average Partial Pressure of CO2 in Chloroplasts From Leaves of Several C3 Plants , 1991 .
[86] J. Seemann,et al. The allocation of protein nitrogen in the photosynthetic apparatus: costs, consequences, and control. , 1989 .
[87] D. Hollinger. Canopy organization and foliage photosynthetic capacity in a broad-leaved evergreen montane forest , 1989 .
[88] I. Terashima,et al. Effects of Light and Nitrogen Nutrition on the Organization of the Photosynthetic Apparatus in Spinach , 1988 .
[89] J. Denslow. TROPICAL RAINFOREST GAPS AND TREE SPECIES DIVERSITY , 1987 .
[90] J. Anderson,et al. Photoregulation of the Composition, Function, and Structure of Thylakoid Membranes , 1986 .
[91] W. H. Romme,et al. Natural disturbance by tree falls in old-growth mixed mesophytic forest: Lilley Cornett Woods, Kentucky , 1982 .
[92] M. Monsi. Uber den Lichtfaktor in den Pflanzengesellschaften und seine Bedeutung fur die Stoffproduktion , 1953 .
[93] E. Gabrielsen. Effects of Different Chlorophyll Concentrations on Photosynthesis in Foliage Leaves , 1948 .