PDF
Abstract
Exploring the response differences of leaf physiology parameters to enhanced nitrogen deposition between saplings and trees is vital for predicting the variations of terrestrial ecosystem structure and function under future global climate change. In this study, the ecophysiological parameters of saplings and trees of Fraxinus mandshurica Rupr. were measured at different levels of nitrogen addition in a temperate forest. The results show that ecophysiological parameters maximum net photosynthetic rate (P max), apparent quantum efficiency (α), dark respiration (R d), light saturation point (L sp), photosynthetic nitrogen use efficiency (PNUE), specific leaf area (SLA) and stomatal conductance under saturated light intensity (G smax) were higher in saplings than in trees. These physiological parameters and not N leaf (leaf nitrogen content) led to relatively lower P max and R d in trees. For both saplings and trees, low and median nitrogen addition (23 and 46 kg ha−1a−1) resulted in significant increases in P max, R d, L sp, Chl, PNUE, SLA and G smax. These parameters tended to decline under high additions of nitrogen (69 kg ha−1a−1), whereas N leaf was always enhanced with increasing nitrogen. Variations in P max and R d with increasing nitrogen were attributed to variations in the strongly related parameters of, L sp, Chl, PNUE, SLA and G smax. Overall, the response sensitivity of physiological parameters to enhanced nitrogen levels was lower in trees compared with saplings.
Keywords
Physiology parameters
/
Added nitrogen
/
Saplings
/
Trees
/
Deciduous broadleaved species
Cite this article
Download citation ▾
Jinwei Sun, Fuqi Yao, Jiabing Wu, Pingcang Zhang, Wensheng Xu.
Effect of nitrogen levels on photosynthetic parameters, morphological and chemical characters of saplings and trees in a temperate forest.
Journal of Forestry Research, 2017, 29(6): 1481-1488 DOI:10.1007/s11676-017-0547-8
| [1] |
Ågren GI. Limits to plant production. J Theor Biol, 1985, 113(1): 89-92.
|
| [2] |
Amichev BY, Johnston M, Van Rees KC. Hybrid poplar growth in bioenergy production systems: biomass prediction with a simple process-based model (3PG) Heidelberglaan. Biomass Bioenergy, 2010, 34(5): 687-702.
|
| [3] |
Amrita Soyza FD. Effects of plant size on photosynthesis and water relations in the desert shrub Prosopis glandulosa (Fabaceae). Am J Bot, 1996, 83(1): 95-105.
|
| [4] |
Ayub G, Smith RA, Tissue DT, Atkin OK. Impacts of drought on leaf respiration in darkness and light in Eucalyptus saligna exposed to industrial-age atmospheric CO2 and growth temperature. New Phytol, 2011, 190(4): 1003-1018.
|
| [5] |
Bazzaz FA. Experimental studies on the evolution of niche in successional plant populations, 1987, Oxford: Cambridge University Press 245 272
|
| [6] |
Bond B. Age-related changes in photosynthesis of woody plants. Ann For Sci, 2000, 5: 349-352.
|
| [7] |
Bouma TJ, De Visser R, Janssen JHJA, De Kock MJ, Van Leeuwen PH, Lambers H. Respiratory energy requirements and rate of protein turnover in vivo determined by the use of an inhibitor of protein synthesis and a probe to assess its effect. Physiol Plant, 1994, 92(4): 585-594.
|
| [8] |
Brown K, Thompson W, Weetman G. Effects of N addition rates on the productivity of Picea sitchensis, Thuja plicata, and Tsuga heterophylla saplings. Trees, 1996, 10(3): 189-197.
|
| [9] |
Chandler J, Dale J. Nitrogen deficiency and fertilization effects on needle growth and photosynthesis in Sitka spruce (Picea sitchensis). Tree Physiol, 1995, 15(12): 813-817.
|
| [10] |
Chapin FS, Vitousek PM, Van Cleve KV. The nature of nutrient limitation in plant communities. Am Nat, 1986, 127(1): 48-58.
|
| [11] |
Chen S, Bai Y, Zhang L, Han X. Comparing physiological responses of two dominant grass species to nitrogen addition in Xilin River Basin of China. Environ Exp Bot, 2005, 53(1): 65-75.
|
| [12] |
Dang QL, Margolis HA, Coyea MR, Sy M, Collatz GJ. Regulation of branch-level gas exchange of boreal trees: roles of shoot water potential and vapor pressure difference. Tree Physiol, 1997, 17: 521-535.
|
| [13] |
Donovan LA, Ehleringer J. Ecophysiological differences among juvenile and reproductive plants of several woody species. Oecologia, 1991, 86: 594-597.
|
| [14] |
Donovan LA, Ehleringer J. Contrasting water-use patterns among size and life-history classes of a semi-arid shrub. Funct Ecol, 1992, 6: 482-488.
|
| [15] |
Ehleringer JR, Field CB. Scaling physiological processes: leaf to globe, 1993, San Diego: Academic press 388
|
| [16] |
Evans J. The relationship between carbon-dioxide-limited photosynthetic rate and ribulose-1, 5-bisphosphate-carboxylase content in two nuclear-cytoplasm substitution lines of wheat, and the coordination of ribulose-bisphosphate-carboxylation and electron-transport capacities. Planta, 1986, 167(3): 351-358.
|
| [17] |
Evans JR. Photosynthesis and nitrogen relationships in leaves of C3 plants. Oecologia, 1989, 78(1): 9-19.
|
| [18] |
Fleischer K, Rebel KT, van der Molen MK, Erisman JW, Wassen MJ, van Loon EE, Montagnani L, Gough CM, Herbst M, Janssens IA, Gianelle D, Dolman AJ. The contribution of nitrogen deposition to the photosynthetic capacity of forests. Global Biogeochem Cycles, 2013, 27(1): 187-199.
|
| [19] |
Fournier C, Andrieu B. A 3D architectural and process-based model of maize development. Ann Bot Lond, 1998, 81(2): 233-250.
|
| [20] |
Galloway JN. The global nitrogen cycle: changes and consequences. Environ Pollut, 1998, 102(1): 15-24.
|
| [21] |
Galloway JN, Dentener FJ, Capone DG, Boyer EW, Howarth RW, Seitzinger SP, Asener GP, Cleveland CC, Green PA, Holland EA, Karl DM, Michaels AF, Porter JH, Townsend AR, Vöosmarty CJ. Nitrogen cycles: past, present, and future. Biogeochemistry, 2004, 70(2): 153-226.
|
| [22] |
Gower ST, McMurtrie RE, Murty D. Aboveground net primary production decline with stand age: potential causes. Trends Ecol Evol, 1996, 11(9): 378-382.
|
| [23] |
Greenwood MS. Juvenility and maturation in conifers: current concept. Tree Physiol, 1995, 15: 433-438.
|
| [24] |
Guan DX, Wu JB, Zhao XS, Han SJ, Yu GR, Sun XM, Jin CJ. CO2 fluxes over an old temperate mixed forest in northeastern China. Agric For Meteorol, 2006, 137(3): 138-149.
|
| [25] |
Gunn S, Farrar J, Collis B, Nason M. Specific leaf area in barley: individual leaves versus whole plants. New Phytol, 1999, 143(1): 45-51.
|
| [26] |
He JS, Zhang QB, Bazzaz F. Differential drought responses between saplings and adult trees in four co-occurring species of New England. Trees, 2005, 19(4): 442-450.
|
| [27] |
Ishida A, Yazaki K, Lai Hoe A. Ontogenetic transition of leaf physiology and anatomy from seedlings to mature trees of a rain forest pioneer tree, Macaranga gigantea. Tree Physiol, 2005, 19(4): 442-450.
|
| [28] |
Knops JM, Reinhart K. Specific leaf area along a nitrogen fertilization gradient. Am Midl Nat, 2000, 144(2): 265-272.
|
| [29] |
Kolb T, Fredericksen T, Steiner K, Skelly J. Issues in scaling tree size and age responses to ozone: a review. Environ Pollut, 1997, 98(2): 195-208.
|
| [30] |
Körner C. Biosphere responses to CO2 enrichment. Ecol Appl, 2000, 10(6): 1590-1619.
|
| [31] |
Long S, Baker N, Raines C. Analysing the responses of photosynthetic CO2 assimilation to long-term elevation of atmospheric CO2 concentration. Plant Ecol, 1993, 104–105(1): 33-45.
|
| [32] |
Maggs DH. The distance from tree base to shoot origin as a factor in shoot and tree growth. J Hortic Sci Biotech, 1964, 39(4): 298-307.
|
| [33] |
Makino A, Osmond B. Effects of nitrogen nutrition on nitrogen partitioning between chloroplasts and mitochondria in pea and wheat. Plant Physiol, 1991, 96(2): 355-362.
|
| [34] |
May RM. On the theory of niche overlap. Theor Popul Biol, 1974, 5(3): 297-332.
|
| [35] |
Mediavilla S, Escudero A. Mature trees versus seedlings: differences in leaf traits and gas exchange patterns in three co-occurring Mediteranean oaks. Ann For Sci, 2003, 60(5): 455-460.
|
| [36] |
Miller PM, Eddleman LE, Miller JM. Juniperus occidentalis juvenile foliage: advantages and disadvantages for a stress-toletant, invasive conifer. Can J For Res, 1995, 25(3): 470-479.
|
| [37] |
Minocha R, Stephanie L, Bauer GA, Berntson GM, Magill AH, Aber J, Bazzaz FA (2001) Nitrogen availability and net primary production in temperate forests: the role of leaf physiology, foliage turnover and canopy structure. http://abstracts.aspb.org/pb2001/public/P34/0093.html
|
| [38] |
Morin X, Thuiller W. Comparing niche-and process-based models to reduce prediction uncertainty in species range shifts under climate change. Ecology, 2009, 90(5): 1301-1313.
|
| [39] |
Nakaji T, Fukami M, Dokiya Y, Izuta T. Effects of high nitrogen load on growth, photosynthesis and nutrient status of Cryptomeria japonica and Pinus densiflora seedlings. Trees, 2001, 15(8): 453-461.
|
| [40] |
Nakaji T, Takenaga S, Kuroha M, Izuta T. Photosynthetic response of Pinus densiflora saplings to high nitrogen load. Environ Sci, 2002, 9(4): 269-282.
|
| [41] |
Niinemets Ü. Distribution patterns of foliar carbon and nitrogen as affected by tree dimensions and relative light conditions in the canopy of Picea abies. Trees, 1997, 11(3): 144-154.
|
| [42] |
Niinemets Ü. Stomatal conductance alone does not explain the decline in foliar photosynthetic rates with increasing tree age and size in Picea abies and Pinus sylvestris. Tree Physiol, 2002, 22(8): 515-535.
|
| [43] |
Norby RJ, Wullschleger SD, Gunderson CA, Johnson DW, Ceulemans R. Tree responses to rising CO2 in field experiments: implications for the future forest. Plant, Cell Environ, 1999, 22(6): 683-714.
|
| [44] |
Palow DT, Nolting K, Kitajima K. Functional trait divergence of juveniles and adults of nine Inga species with contrasting soil preferences in a tropical rain forest. Funct Ecol, 2012, 26(5): 1144-1152.
|
| [45] |
Reich PB, Walters MB, Ellsworth DS, Vose JM, Volin JC, Gresham C, Bowman WD. Relationships of leaf dark respiration to leaf nitrogen, specific leaf area and leaf life-span: a test across biomes and functional groups. Oecologia, 1998, 114(4): 471-482.
|
| [46] |
Richardson AD, Berlyn GP. Changes in foliar spectral reflectance and chlorophyll fluorescence of four temperate species following branch cutting. Tree Physiol, 2002, 22(7): 449-506.
|
| [47] |
Ripullone F, Grassi G, Lauteri M, Borghetti M. Photosynthesis–nitrogen relationships: interpretation of different patterns between Pseudotsuga menziesii and Populus × euroamericana in a mini-stand experiment. Tree Physiol, 2003, 23(2): 137-144.
|
| [48] |
Ryan MG, Yoder BJ. Hydraulic limits to tree height and tree growth. Bioscience, 1997, 47(4): 235-242.
|
| [49] |
Ryan MG, Binkley D, Fownes JH. Age-related decline in forest productivity: pattern and process. Adv Ecol Res, 1997, 27(08): 213-262.
|
| [50] |
Samuelson L, Kelly J. Carbon partitioning and allocation in northern red oak saplings and mature trees in response to ozone. Tree Physiol, 1996, 16(10): 853-858.
|
| [51] |
Sandquist DR, Schuster WS, Donovan LA, Phillips SL, Ehleringer JR. Differences in carbon isotope discrimination between saplings and adults of southwestern desert perennial plants. Southwest Nat, 1993, 38(3): 212-217.
|
| [52] |
Schulze E-D, Kelliher FM, Korner C, Lloyd J, Leuning R. Relationships among maximum stomatal conductance, ecosystem surface conductance, carbon assimilation rate, and plant nitrogen nutrition: a global ecology scaling exercise. Ann Rev Ecol Evol Syst, 1994, 25(1): 629-660.
|
| [53] |
Stitt M. Baker NR. Metabolic regulation of photosynthesis. Photosynthesis and the Environment, 1996, Dordrecht: Kluwer Academic Publishers 151 190
|
| [54] |
Sugiura D, Tateno M. Optimal leaf-to-root ratio and leaf nitrogen content determined by light and nitrogen availabilities. PLoS ONE, 2011 6 7 e22236
|
| [55] |
Thomas SC, Ickes K. Ontogenetic changes in leaf size in Malaysian rain forest trees. Biotropica, 1995, 27(4): 427-434.
|
| [56] |
Thomas SC, Winner WE. Photosynthetic differences between saplings and adult trees: an integration of field results by meta-analysis. Tree Physiol, 2002, 22(2–3): 117-127.
|
| [57] |
Wang M, Shi S, Lin F, Hao ZQ, Jiang P, Dai GH. Effects of soil water and nitrogen on growth and photosynthetic response of manchurian ash (Fraxinus mandshurica) saplings in northeastern China. PLoS ONE, 2012 7 2 e30754
|
| [58] |
Waring RH. Characteristics of trees predisposed to die. Bioscience, 1987, 37(8): 569-574.
|
| [59] |
Yoder B, Ryan M, Waring R, Schoettle A, Kaufmann M. Evidence of reduced photosynthetic rates in old trees. For Sci, 1994, 40(3): 513-527.
|
| [60] |
Zimmerman MH. Xylem structure and the ascent of sap. Science, 1983, 222(4623): 500-501.
|