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Nitrogen distribution and leaf area indices in relation to photosynthetic nitrogen use efficiency in savanna grasses

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Abstract

Leaf photosynthetic characteristics, distribution patterns of nitrogen content per unit leaf area (nL) and leaf area production per unit nLwere measured in natural stands of a C4 grass (Hyparrhenia rufa) from the seasonal savannas and of a C4grass (Paspalum fasciculatum) and two C3grasses (Leersia hexandra and Hymenachne amplexicaulis) from the flooded savannas in central Venezuela. Daily rates of canopy photosynthesis (PcD) as well as the optimal leaf area production per unit nLat which PcDfor a given total amount of nitrogen in the canopy (i.e., canopy-PNUE) is maximized were also calculated. The C3and C4species from the flooded savannas had similar light saturated rates of photosynthesis per unit nL(i.e. leaf-PNUE) and similar canopy-PNUEs which was in strong contrast with previous studies. Especially H. rufa but also L. hexandra and H. amplexicaulis had leaf- and canopy-PNUEs which were considerably higher than the values calculated for most other species with the same photosynthetic pathway (i.e., C3or C4). In contrast to previous studies, differences in the light gradient in the canopy between stands only partially explained differences in N distribution. Measured leaf area indices were greater and the average nL values were consequently smaller than the calculated optima. There was, however, a very strong linear correlation between the optimal and actual average nLindicating that even though the model overestimated average nL, it did predict the differences in leaf area production per unit nitrogen – the inverse average nL– very well. This result strongly indicates that leaf area production per unit of leaf nitrogen increases with leaf-PNUE and decreases with the extinction coefficient for light. Grass species from seasonal savannas have extremely high leaf-PNUEs and thus optimally produce large amounts of leaf area per unit nL. This helps explain how stands of these species may have high leaf area indices and achieve high photosynthetic productivity despite the very low nutrient availability at which they grow.

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References

  • Anten, N. P. R., Schieving, F. & Werger, M. J. A. 1995a. Patterns of light and nitrogen distribution in relation to whole canopy carbon gain in C3 and C4 mono-and dicotyledonous species. Oecologia 101: 504–513.

    Google Scholar 

  • Anten, N. P. R., Schieving, F., Medina, E., Werger, M. J. A. & Schuffelen, P. 1995b. Optimal leaf area indices in C3 and C4 mono-and dicotyledonous species at low and high nitrogen availability. Physiol. Plant 95: 541–550.

    Google Scholar 

  • Anten, N. P. R., Miyazawa, K., Hikosaka, K., Nagashima, H. & Hirose, T. 1998. Leaf nitrogen distribution in relation to leaf age and photon flux density in dominant and subordinate plants in dense stands of a dicotyledonous herb. Oecologia 113: 314–324.

    Google Scholar 

  • Barnes, P. W., Beyschlag, W., Ryel, R., Flint, S. D. & Caldwell, M. M. 1990. Plant competition for light analyzed with a multi-species canopy model. III. Influence of canopy structure in mixtures and monocultures of wheat and wild oat. Oecologia 82: 560–566.

    Google Scholar 

  • Baruch, Z., Ludlow, M. M. & Davis, R. 1985. Photosynthetic responses of native and introduced C4 grasses from Venezuelan savannas. Oecologia 67: 388–393.

    Google Scholar 

  • Bowman, W. D. 1991. Effects of nitrogen nutrition on photosynthesis and growth in C4 panicum species. Plant Cell and Environ. 14: 295–301.

    Google Scholar 

  • Cook, M. G. & Evans, L. T. 1983. Physiological-aspects of domestication and improvement of rice (Oryzaspp.). Field Crops Res. 6: 219–238.

    Google Scholar 

  • Evans, J. R. 1983. Nitrogen and photosynthesis in the flag leaf of wheat (Triticum aestivumL.). Plant Physiol. 72: 297–302.

    Google Scholar 

  • Evans, J. R. 1989. Photosynthesis and nitrogen relationships in leaves of C3 plants. Oecologia 78: 9–19.

    Google Scholar 

  • Field, C. 1983. Allocating leaf nitrogen for maximization of carbon gain: Leaf age as a control on the allocation program. Oecologia 56: 341–347.

    Google Scholar 

  • Field, C. & Mooney, H. A. 1986. The photosynthesis nitrogen relationship in wild plants. Pp. 25–55. In: Givnish, T. J. (ed.), On the Economy of Plant Form and Function. Cambridge University Press, Cambridge.

    Google Scholar 

  • Field, C., Merino, J., Mooney, H. A. 1983. Compromises between water-use and nitrogen-use efficiency in five California evergreens. Oecologia 60: 384–389.

    Google Scholar 

  • Goudriaan, J. 1988. The bare bones of leaf angle distribution in radiation models for canopy photosynthesis and energy exchange. Agric. For. Metereol. 43: 155–169.

    Google Scholar 

  • Goudriaan, J. 1995. Optimization of nitrogen distribution and leaf area index for maximum canopy assimilation rate. In: Thiyagarayan TM, ten Berge HFM(eds) Nitrogen management studies in irrigated rice. SARP Res. Proc., AB-DLO, TPE-WAU, IRRI, Wageningen, Los Baños.

    Google Scholar 

  • Hirose, T. & Werger, M. J. A. 1987. Maximizing daily canopy photosynthesis with respect to the leaf nitrogen allocation pattern in the canopy. Oecologia 72: 520–526.

    Google Scholar 

  • Hirose, T., Werger, M. J. A., Pons, T. L. & van Rheenen, J. W. A. 1988. Canopy structure and leaf nitrogen distribution in a stand of Lysimachia vulgaris(L.) as influenced by stand density. Oecologia 77: 145–150.

    Google Scholar 

  • Hirose, T., Werger, M. J. A. & van Rheenen, J. W. A. 1989. Canopy structure and leaf nitrogen distribution in a stand of Carex acutiformis. Ecology 70: 1610–1618.

    Google Scholar 

  • Hollinger, D. Y. 1996. Optimality and nitrogen allocation in a tree canopy. Tree Physiol. 16: 627–634.

    Google Scholar 

  • Le Roux, X. & Mordelet, P. 1995. Leaf and canopy assimilation in a West African humid savanna during the early growing season. J. Trop. Ecol. 11: 529–545.

    Google Scholar 

  • Makino, A., Mae, T. & Ohira, K. 1988. Differences between wheat and rice in the enzymic properties of ribulose-1,5-biphosphate carboxylase/oxygenase and the relationships to photosynthetic gas exchange. Planta 174: 30–38.

    Google Scholar 

  • Medina, E (1987) Nutrients: requirements, conservation and cycles in the herbaceous layer. Pp. 39–65. In: Walker, B. (ed) Determinants of savanna. IUBS Monographs Series No. 3, IRL Press, Oxford.

    Google Scholar 

  • Medina, E. 1996. Biodiversity and nutrient relations in savanna ecosystems: interactions between primary producers, soil microorganisms and soils. Pp. 45–57. In: Solbrig, O. T., Medina, E. & Silva, J. (eds), Biodiversity and savanna ecosystem processes. Ecological Studies 121, Springer-Verlag, Berlin.

    Google Scholar 

  • Medina, E. & Motta, N. 1990. Metabolism and distribution of grasses in tropical flooded savannas in Venezuela. J. Trop. Ecol. 6: 77–89.

    Google Scholar 

  • Montes, R. & San Jose, J. J. 1995. Vegetation and soil analysis of topo-sequences in the Orinoco llanos. Flora 190: 1–33.

    Google Scholar 

  • Mooney, H. A. & Gulmon, S. L. 1979. Environmental and evolutionary constraints on photosynthetic characteristics of higher plants. Pp. 316–337. In: Solbrig, O. T., Jain, S., Johnson, G. B. & Raven, P. H. (eds), Topics in plant population biology. Colombia University Press, New York.

    Google Scholar 

  • Pons, T. L., Schieving, F., Hirose, T. & Werger, M. J. A. 1989. Optimization of leaf nitrogen allocation for canopy photosynthesis in Lysimachia vulgaris(L.). Pp. 175–186. In: Lambers, H., Cambridge, M. L., Konings, H., Pons, T. L. (eds), Causes and consequences of variation in growth rate and productivity of higher plants. SPB Academic Publishing, The Hague.

    Google Scholar 

  • Ramia, M. 1974. Estudio ecológico del módulo experimental de Mantecal. Boletín de la Sociedad Venezolana de Ciencias Naturales 31: 117–142.

    Google Scholar 

  • Sage, R. F. & Pearcy, R. W. 1987. The nitrogen use efficiency of C3 and C4 plants. II. Leaf nitrogen effects on the gas exchange characteristics of Chenopodium album(L.) and Amaranthus retroflexus(L.) Plant Physiol. 84: 959–963.

    Google Scholar 

  • Sarmiento, G. 1984. Ecology of neotropical savannas. Cambridge University Press, Cambridge.

    Google Scholar 

  • Schieving, F., Werger, M. J. A. & Hirose, T. 1992a. Canopy structure, nitrogen distribution and whole canopy photosynthetic carbon gain in growing and flowering stands of tall herbs. Vegetatio 102: 173–182.

    Google Scholar 

  • Schieving, F., Pons, T. L., Werger, M. J. A. & Hirose, T. 1992b. The vertical distribution of nitrogen and photosynthetic activity at different plant densities in Carex acutiformis. Plant Soil 14: 9–17.

    Google Scholar 

  • von Caemmerer, S. & Farquhar, G. D. 1981. Some relationships between the biochemistry of photosynthesis and the gas exchange of leaves. Planta 153: 376–387.

    Google Scholar 

  • Werger, M. J. A. & Hirose, T. 1991. Leaf nitrogen distribution and whole canopy photosynthetic carbon gain in herbaceous stands. Vegetatio 97: 11–20.

    Google Scholar 

Download references

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Anten, N.P.R., Werger, M.J.A. & Medina, E. Nitrogen distribution and leaf area indices in relation to photosynthetic nitrogen use efficiency in savanna grasses. Plant Ecology 138, 63–75 (1998). https://doi.org/10.1023/A:1009727822617

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  • DOI: https://doi.org/10.1023/A:1009727822617

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