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Relationship of ion absorption to growth rate in taiga trees

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Summary

Rates of nutrient absorption were measured on excised roots of taiga tree seedlings grown in the laboratory. Phosphate and to a lesser extent ammonium (relatively immobile ions in the soil) were absorbed most rapidly by poplar and aspen, two species with rapid growth rates and most slowly by alder and/or black spruce, species with slow growth rates. In contrast, potassium (which is more mobile in soil) was absorbed most rapidly by slowly growing species. All species had low rates of nitrate and chloride absorption. Absorption rate of each ion was most temperature sensitive in those species that typically occupy the warmest soils (i.e. poplar and aspen). We suggest that in infertile soils a high capacity for uptake is an important component of root competition only in the case of mobile ions (e.g. potassium, nitrate), because only for these ions do diffusion shells of adjacent roots overlap; in contrast plants compete for immobile ions (e.g. phosphate) only by increasing absorptive surface via root growth or mycorrhizal association.

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References

  • Andrew CS (1966) A kinetic study of phosphate absorption by excised roots of Stylosanthes humilis, Phaseolus lathyroides, Desmodium uncinatium, Medicago sativa, and Hordeum vulgare. Aust J Agric Res 17:611–624

    Google Scholar 

  • Atwell BJ, Veerkamp MT, Stuiver B, Kuiper PJC (1980) The uptake of phosphate by Carex species from oligotrophic to eutrophic swamp habitats. Physiol Plant 49:487–494

    Google Scholar 

  • Barrow NJ (1977) Phosphorus uptake and utilization by tree seedlings. Aust J Bot 25:571–584

    Google Scholar 

  • Bloom AJ, Chapin FS III (1981) Differences in steady state net ammonium and nitrate influx by cold- and warm-adapted barley varieties. Plant Physiol 68:1064–1067

    Google Scholar 

  • Chapin FS III (1980) The mineral nutrition of wild plants. Ann Rev Ecol Syst 11:233–260

    Google Scholar 

  • Chapin FS III, Bloom A (1976) Phosphate absorption: adaptation of tundra graminoids to a low temperature, low phosphorus environment. Oikos 27:111–121

    Google Scholar 

  • Chapin FS III, Follett JM, O'Connor KF (1982) Growth, phosphate absorption, and phosphorus chemical fractions in two Chionochloa species. J Ecol 70:305–321

    Google Scholar 

  • Chapin FS III, Holleman DF (1974) Radioassay of 32P in intact plant roots using Cerenkov radiation detection. Int J Appl Radiat Isotopes 25:568–570

    Google Scholar 

  • Chapin FS III, Tryon PR, Van Cleve K (1983) Influence of phosphorus supply on growth and biomass allocation of Alaskan taiga tree seedlings. Can J For Res 13:1092–1098

    Google Scholar 

  • Christie EK, Moorby J (1975) Physiological responses of semiarid grasses. I. The influence of phosphorus supply on growth and phosphorus absorption. Aust J Agric Res 26:423–436

    Google Scholar 

  • Clarkson DT (1967) Phosphorus supply and growth rate in species of Agrostis L. J Ecol 55:111–118

    Google Scholar 

  • Clarkson DT (1985) Factors affecting mineral nutrient acquisition by plants. Ann Rev Plant Physiol 36:77–115

    Google Scholar 

  • Epstein E, Schmid WE, Rains DW (1963) Significance and technique of short-term experiments on solute absorption by plant tissue. Plant Cell Physiol 4:79–84

    Google Scholar 

  • Gerloff GC (1976) Plant efficiencies in the use of nitrogen, phosphorus, and potassium. M.J. Wright (ed) Cornell Univ Agric Exptl Stn. Ithaca, NY, pp 161–169

    Google Scholar 

  • Glass ADM, Perley JE (1980) Varietal differences in potassium uptake by barley. Plant Physiol 65:160–164

    Google Scholar 

  • Haynes RJ, Goh KM (1978) Ammonium and nitrate nutrition of plants. Biol Rev 53:465–510

    Google Scholar 

  • Jensen P, Pettersson S (1978) Allosteric regulation of potassium uptake in plant roots. Physiol Plant 42:207–213

    Google Scholar 

  • Ingestad T (1976) Nitrogen and cation nutrition of three ecologically different plant species. Physiol Plant 38:29–34

    Google Scholar 

  • Lindgren DT, Gabelman WH, Gerloff GC (1977) Variability of phosphorus uptake and translocation in Phaseolus vulgaris L. under phosphorus stress. J Am Soc Hort 102:674–677

    Google Scholar 

  • McCown BH (1978) The interactions of organic nutrients, soil nitrogen, and soil temperature and plant growth and survival in the arctic environment. In: Tieszen LL (ed) Vegetation and production ecology of an Alaskan arctic tundra. Springer-Verlag, New York, pp 435–456

    Google Scholar 

  • Newman EI (1985) The rhizosphere: carbon sources and microbial populations. In: Fitter AH (ed) Ecological Interactions in Soil. Blackwell, Oxford, pp 107–121

    Google Scholar 

  • Nye PH (1977) The rate-limiting step in plant nutrient absorption from soil. Soil Science 123:292–297

    Google Scholar 

  • Nye PH, Tinker PB (1977) Solute movement in the soil-root system. Univ. of California Press, Berkeley, 342 pp

    Google Scholar 

  • Pettersson S (1978) Varietal differences in rubidium uptake efficiency of barley roots. Physiol Plant 44:1–6

    Google Scholar 

  • Sarić MR (ed) (1982) Genetic Specificity of Mineral Nutrition of Plants. Serbian Academy of Sciences. Belgrad, Yugoslavia

    Google Scholar 

  • Tilman D (1982) Resource Competition and Community Structure. Princeton Univ Press, Princeton

    Google Scholar 

  • Van Cleve K, Oliver L, Schlentner R, Viereck LA, Dyrness CT (1983) Productivity and nutrient cycling in taiga forest ecosystems. Can J For Res 13:747–766

    Google Scholar 

  • Van Cleve K, Viereck LA (1981) Forest succession in relation to nutrient cycling in the boreal forest of Alaska. In: West DC, Shugart H, Botkin DB (eds) Forest Succession: Concepts & Applications. Springer-Verlag, New York, pp 185–211

    Google Scholar 

  • Veerkamp MT, Kuiper PJC (1982) The uptake of potassium by Carex species from swamp habitits varying from oligotrophic to eutrophic. Physiol Plant 55:237–241

    Google Scholar 

  • Vierick LA, Little EL Jr (1972) Alaska trees and shrubs. Agriculture Handbook, Washington, no 410

  • White RE (1972) Studies on mineral ion absorption by plants. I. The absorption and utilization of phosphate by Stylosanthes humilis, Phaseolus atropurpureus and Desmodium intortum. Plant Soil 36:427–447

    Google Scholar 

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Chapin, F.S., Van Cleve, K. & Tryon, P.R. Relationship of ion absorption to growth rate in taiga trees. Oecologia 69, 238–242 (1986). https://doi.org/10.1007/BF00377628

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  • DOI: https://doi.org/10.1007/BF00377628

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