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Nutrient use efficiency in evergreen and deciduous species from heathlands

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Summary

The nutrient (N, P) use efficiency (NUE: g g−1 nutrient), measured for the entire plant, of field populations of the evergreen shrubs Erica tetralix (in a wet heathland) and Calluna vulgaris (in a dry heathland) and the deciduous grass Molinia caerulea (both in a wet and a dry heathland) was compared. Erica and Calluna are crowded out by Molinia when nutrient availability increases. NUE was measured as the product of the mean residence time of a unit of nutrient in the population (MRT: yr) and nutrient productivity (A: annual productivity per unit of nutrient in the population, g g−1 nutrient yr−1. It was hypothesized that 1) in low-nutrient habitats selection is on features leading to a high MRT, whereas in high-nutrient habitats selection is on features leading to a high A; and that 2) due to evolutionary trade-offs plants cannot combine genotypically determined features which maximize both components of NUE.

Both total productivity and litter production of the Molinia populations exceeded that of both evergreens about three-fold. Nitrogen and phosphorus resorption from senescing shoots was much lower in the evergreens compared with Molinia. In a split-root experiment no nutrient resorption from senescing roots was observed. Nutrient concentrations in the litter were equal for all species, except for litter P-concentration of Molinia at the wet site. Both Erica and Calluna had a long mean residence time of both nitrogen and phosphorus and a low nitrogen and phosphorus productivity. The Molinia populations showed a shorter mean residence time of N and P and a higher N- and P-productivity. These patterns resulted in an equal nitrogen use efficiency and an almost equal phosphorus use efficiency for the species under study. However, when only aboveground NUE was considered the Molinia populations had a much higher NUE than the evergreens.

The results are consistent with the hypotheses. Thus, the low potential growth rate of species from low-nutrient habitats is probably the consequence of their nutrient conserving strategy rather than a feature on which direct selection takes place in these habitats.

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References

  • Aerts R (1989a) Aboveground biomass and nutrient dynamics of Calluna vulgaris and Molinia caerulea in a dry heathland. Oikos 56:31–38

    Google Scholar 

  • Aerts R (1989b) The effect of increased nutrient availability on leaf turnover and aboveground productivity of two evergreen ericaceous shrubs. Oecologia 78:115–120

    Google Scholar 

  • Aerts R, Berendse F (1988) The effect of increased nutrient availability on vegetation dynamics in wet heathlands. Vegetatio 76:63–69

    Google Scholar 

  • Aerts R, Berendse F (1989) Aboveground nutrient turnover and net primary production of an evergreen and a deciduous species in a heathland ecosystem. J Ecol 77:343–356

    Google Scholar 

  • Aerts R, De Caluwe H (1989) Aboveground productivity and nutrient turnover of Molinia caerulea along an experimental gradient of nutrient availability. Oikos 54:320–324

    Google Scholar 

  • Aerts R, Berendse F, Klerk NM, Bakker C (1989) Root production and root turnover in two dominant species of wet heathlands. Oecologia 81:374–378

    Google Scholar 

  • Aerts R, Berendse F, De Caluwe H, Schmitz M (1990) Competition in heathland along an experimental gradient of nutrient availability. Oikos 57:310–318

    Google Scholar 

  • Baas WJ (1989) Secondary plant compounds, their ecological significance and consequences for the carbon budget. Introduction of the Carbon/Nutrient Cycle theory. In: Lambers H, Konings H, Cambridge ML, Pons TL (eds) Causes and consequences of variation in growth rate and productivity of higher plants, pp 313–340. SPB Academic Publishing, The Hague

    Google Scholar 

  • Berendse F, Aerts R (1987) Nitrogen-use-efficiency: a biologically meaningful definition? Funct Ecol 1:293–296

    Google Scholar 

  • Berendse F, Elberse WT (1989) Competition and nutrient losses from the plant. In: Lambers H, Konings H, Cambridge ML, Pons TL (eds) Causes and consequences of variation in growth rate and productivity of higher plants, pp. 269–284. SPB Academic Publishing, The Hague

    Google Scholar 

  • Berendse F, Bobbink R, Rouwenhorst G (1989) A comparative study on nutrient cycling in wet heathland ecosystems. II Litter decomposition and nutrient mineralization. Oecologia 78:338–348

    Google Scholar 

  • Birk EM, Vitousek PM (1986) Nitrogen availability and nitrogen use efficiency in loblolly pine stands. Ecology 67:69–79

    Google Scholar 

  • Boerner REJ (1984) Foliar nutrient dynamics and nitrogen use efficiency of four deciduous tree species in relation to site fertility. J Appl Ecol 21:1029–1040

    Google Scholar 

  • Caldwell MM Camp LB (1974) Belowground productivity of two cool desert communities. Oecologia 17:123–130

    Google Scholar 

  • Chabot BF, Hicks DJ (1982) The ecology of leaf life spans. Ann Rev Ecol Syst 13:229–259

    Google Scholar 

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

    Google Scholar 

  • Chapin FS, Kedrowski RA (1983) Seasonal changes in nitrogen and phosphorus fractions and autumn retranslocation in evergreen and deciduous taiga trees. Ecology 64:376–391

    Google Scholar 

  • Coleman DC, Andrews R, Ellis JE, Singh JS (1976) Energy flow and partitioning in selected man-managed and natural ecosystems. Agroecosystems 3:45–54

    Google Scholar 

  • Frissel MJ (1981) The definition of residence time in ecological models. In: Clark FE, Roswall T (eds) Terrestrial Nitrogen Cycles. Ecol Bull (Stockholm) 33:117–122

  • Gray JT (1983) Nutrient use by evergreen and deciduous shrubs in Southern California. I. Community nutrient cycling and nutrient-use efficiency. J Ecol 71:21–41

    Google Scholar 

  • Grime JP (1979) Plant strategies and vegetation processes. Wiley, Chichester

    Google Scholar 

  • Haukioja E, Niemelä P, Sirén S (1985) Foliage phenols and nitrogen in relation to growth, insect damage, and ability to recover after defoliation, in the mountain birch Betula pubescens ssp. tortuosa. Oecologia 65:214–222

    Google Scholar 

  • Headley AD, Callaghan TV, Lee JA (1985) The phosphorus economy of the evergreen tundra plant, Lycopodium annotinum Oikos 45:235–245

    Google Scholar 

  • Heil GW, Bruggink M (1987) Competition for nutrients between Calluna vulgaris (L.) Hull and Molinia caerulea (L.) Moench. Oecologia 73:105–108

    Google Scholar 

  • Ingestad T (1979) Nitrogen stress in Birch seedlings. II. N, P, Ca and Mg nutrition. Physiol Plant 45:149–157

    Google Scholar 

  • Jefferies TA (1915) Ecology of the purple heath grass (Molinia caerulea). J Ecol 3:93–109

    Google Scholar 

  • Johnson DA, Tieszen LL (1976) Aboveground biomass allocation, leaf growth and photosynthetic patterns in tundra plant forms in arctic Alaska. Oecologia 24:159–173

    Google Scholar 

  • Karlsson PS (1985) Effects of water and mineral nutrient supply on a deciduous and an evergreen dwarf shrub: Vaccinium uliginosum L. and V. vitis-idaea L. Holarctic Ecology 8:1–8

    Google Scholar 

  • Kost JA, Boerner REJ (1985) Foliar nutrient dynamics and nutrient use efficiency in Cornus florida. Oecologia 66:602–606

    Google Scholar 

  • Lajtha K, Schlesinger WH (1986) Plant response to variations in nitrogen availability in a desert shrubland community. Biogeochem 2:29–37

    Google Scholar 

  • Lajtha K, Klein M (1988) The effect of varying nitrogen and phosphorus availability on nutrient use by Larrea tridentata, a desert evergreen shrub. Oecologia 75:348–353

    Google Scholar 

  • Loach K (1968) Seasonal growth and nutrient uptake in a Molinietum. J Ecol 56:433–444

    Google Scholar 

  • McClaugherty CA, Aber JD, Melillo JM (1982) The role of fine roots in the organic matter and nitrogen budgets of two forested ecosystems. Ecology 63:1481–1490

    Google Scholar 

  • Merino J, Field C, Mooney HA (1984) Construction and maintenance costs of Mediterranean-climate evergreen and deciduous leaves. II. Biochemical pathway analysis. Acta Oecologia/Oecol Plant 5(19):211–229

    Google Scholar 

  • Miller HG, Cooper JM, Miller JD (1976) Effect of nitrogen supply on nutrients in litterfall and crown leaching in a stand of Corsican pine. J Appl Ecol 13:233–248

    Google Scholar 

  • Monk CD (1966) An ecological significance of evergreenness. Ecology 47:504–505

    Google Scholar 

  • Moore P (1980) The advantages of being evergreen. Nature 285:1168

    Google Scholar 

  • Nicolai V (1988) Phenolic and mineral content of leaves influences decomposition in European forest ecosystems. Oecologia 75:575–579

    Google Scholar 

  • Ostman NL, Weaver GT (1982) Autumnal nutrient transfer by retranslocation, leaching and litterfall in a chestnut-oak forest in southern Illinois. Can J For Res 12:40–51

    Google Scholar 

  • Pastor J, Aber JD, McClaugherty CA, Melillo JM (1984) Aboveground production and N and P cycling along a nitrogen mineralization gradient on Blackhawk Island, Wisconsin. Ecology 65:256–268

    Google Scholar 

  • Penning de Vries FWT, Brunsting AHM, Van Laar HH (1974) Products, requirements and efficiency of biosynthesis: a quantitative approach. J Theor Biol 45:399

    Google Scholar 

  • Persson H (1978) Root dynamics in a young Scots pine stand in Central Sweden. Oikos 30:508–519

    Google Scholar 

  • Poorter H (1989) Interspecific variation in relative growth rate: On ecological causes and physiological consequences. In: Lambers H et al. (eds) Causes and consequences of variation in growth rate and productivity of higher plants, pp. 45–68. SPB Academic Publishing, The Hague

    Google Scholar 

  • Poorter H, Remkes C (1990) Leaf area ratio and net assimilation rate of 24 wild species differing in relative growth rate. Oecologia (in press)

  • Reader RJ (1978) Contribution of overwintering leaves to the growth of three broad-leaved evergreen shrubs belonging to the Ericaceae family. Can J Bot 56:1248–1261

    Google Scholar 

  • SAS Institute Inc (1985) SAS/STAT Guide for personal computers, Version 6 Edition. Cary, NC, USA: SAS Institute Inc.

    Google Scholar 

  • Schlesinger WH, Chabot BF (1977) The use of water and minerals by evergreen and deciduous shrubs in Okefenokee Swamp. Bot Gaz 138:490–497

    Google Scholar 

  • Shaver GR, Melillo JM (1984) Nutrient budgets of marsh plants: efficiency concepts and relation to availability. Ecology 65:1491–1510

    Google Scholar 

  • Simms EL (1987) The effect of nitrogen and phosphorus addition on the growth, reproduction and nutrient dynamics of two ericaceous shrubs. Oecologia 71:541–547

    Google Scholar 

  • Sims PL, Singh JS (1978) The structure and function of ten western North American grasslands. III Net primary production, turnover and efficiencies of energy capture and water use. J Ecol 66:573–597

    Google Scholar 

  • Singh JS, Lauenroth WK, Hunt HW, Swift DM (1984) Bias and random errors in estimates of net root production: a simulation approach. Ecology 65:1760–1764

    Google Scholar 

  • Small E (1972) Photosynthetic rates in relation to nitrogen recycling as an adaptation to nutrient deficiency in peat bog plants. Can J Bot 65:1491–1510

    Google Scholar 

  • Staaf H (1982) Plant nutrient changes in beech leaves during senescence as influenced by site characteristics. Acta Oecol/Oecol Plant 3:161–170

    Google Scholar 

  • Tietema A, Kuikman P, Berendse F (1985) Mass loss, nutrient dynamics and influence of Diptera larvae in decomposing litter of Erica tetralix and Molinia caerulea. Pedobiologia 28:389–397

    Google Scholar 

  • Turner J (1977) Effects of nitrogen availability on nitrogen cycling in a Douglas fir stand. For Sci 23:307–316

    Google Scholar 

  • Vitousek PM (1982) Nutrient cycling and nutrient use efficiency. Am Nat 119:553–572

    Google Scholar 

Download references

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Aerts, R. Nutrient use efficiency in evergreen and deciduous species from heathlands. Oecologia 84, 391–397 (1990). https://doi.org/10.1007/BF00329765

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