Nitrate reduction and nitrate content in ash trees (Fraxinus excelsior L.): distribution between compartments, site comparison and seasonal variation

Trees - Tập 6 - Trang 236-240 - 1992
J. Stadler1, G. Gebauer1
1Lehrstuhl für Pflanzenökologie, Universität Bayreuth, Bayreuth, Germany

Tóm tắt

Nitrate reductase activity (NRA), nitrate content and biomass components of leaflets, leaf stalks, old stem, current-year stem and roots of ash trees (Fraxinus excelsior L.) growing in their natural habitats were investigated. In addition, NRA, total nitrogen and nitrate concentration were analyzed in the leaves and roots of ash trees from four different field sites. The highest NRA per gram biomass and also per total compartment biomass was found in the leaflets, even though root biomass was much higher than total leaflet biomass. The highest nitrate concentrations were found in the leaf stalks. Correlations between nitrate availability in the soil and NRA in leaves were not significant due to high variability of the actual soil nitrate concentrations. The seasonal variation in foliar NRA, nitrate concentration and total nitrogen concentration is much smaller in F. excelsior than reported for herbaceous species and is mainly caused by changes in the actual soil nitrate availability and by senescence of the leaves.

Tài liệu tham khảo

Al Gharbi A, Hipkin CR (1984) Studies on nitrate reductase in British angiosperms. I. A comparison of nitrate reductase activity in ruderal, woodland-edge and woody species. New Phytol 97: 629–639 Andrews M (1986) The partitioning of nitrate assimilation between root and shoot of higher plants. Plant Cell Environ 9: 511–519 Beevers L, Hageman RH (1980) Nitrate and nitrite reduction. In: Miflin BJ (ed) The biochemistry of plants, vol 5. Academic Press, London, pp 115–168 Bollard EG (1956) Nitrogenous compounds in plant xylem sap. Nature 178: 1189–1190 Bollard EG (1960) Transport in the xylem. Annu Rev Plant Physiol 11: 141–166 Clough ECM, Pearson J, Stewart GR (1989) Nitrate utilization and nitrogen status in English woodland communities. Ann Sci For 46: 669–672 Ellenberg H (1977) Stickstoff als Standortsfaktor, insbesondere für mitteleuropäische Pflanzengesellschaften. Oecol Plant 12: 1–22 Ellenberg H, Weber HE, Düll R, Wirth V, Werner W, Paulißen D (1991) Zeigerweite von Pflanzen in Mitteleuropa. Scripta Geobotanica XVIII, Goltze, Göttingen Fredeen AL, Griffin K, Field CD (1991) Effects of light quantity and quality and soil nitrogen status on nitrate reductase activity in rain forest species of the genus Piper. Oecologia 86: 441–446 Gebauer G, Stadler J (1990) Nitrate assimilation and nitrate content in different organs of ash trees (Fraxinus excelsior). In: Beusichem ML van (ed) Plant nutrition — physiology and applications. Kluwer Academic, Dordrecht, pp 101–106 Gebauer G, Melzer A, Rehder H (1984) Nitrate content and nitrate reductase activity in Rumex obtusifolius L. I. Differences in organs and diurnal changes. Oecologia 63: 136–142 Gebauer G, Schuhmacher MI, Krstic B, Rehder H, Ziegler H (1987) Biomass production and nitrate metabolism of Atriplex hortensis L. (C3 plant) and Amaranthus r \(\underset{\raise0.3em\hbox{$\smash{\scriptscriptstyle\cdot}$}}\to {e} \) troflexus L. (C4 plant) in cultures at different levels of nitrogen supply. Oecologia 72: 303–314 Gebauer G, Rehder H, Wollenweber B (1988) Nitrate, nitrate reduction and organic nitrogen in plants from different ecological and taxonomic groups of Central Europe. Oecologia 75: 371–385 Högbom L, Högberg P (1991) Nitrate nutrition of Deschampsia flexuosa (L.) Trin. in relation to nitrogen deposition in Sweden. Oecologia 87: 488–494 Jaworski EG (1971) Nitrate reductase assay in intact plant tissues. Biochem Biophys Res Commun 43: 1274–1279 Lee JA, Stewart RG (1978) Ecological aspects of nitrogen assimilation. Adv Bot Reso 6: 2–43 Lee JA, Woodin SJ, Press MC (1986) Nitrogen assimilation in an ecological context. In: Lambers H, Neetson FF, Stulen I (eds) Fundamental, ecological and agricultural aspects of nitrogen metabolism in higher plants. Nijhoff, Dordrecht, pp 331–346 Lohdi MAK, Ruess RW (1988) Variation in soil nitrifiers and leaf nitrate reductase activity of selected tree species in a forest community. Soil Biol Biochem 20: 939–943 Marschner H (1986) Mineral nutrition of higher plants. Academic Press, London Melzer A, Gebauer G, Rehder H (1984) Nitrate content and nitrate reductase activity in Rumex obtusifolius L. II. Responses to nitrate starvation and nitrogen fertilization. Oecologia 63: 380–385 Mengel K (1984) Ernährung und Stoffwechsel der Pflanze. Gustav Fischer, Stuttgart Norusis MJ (1986) SPSS/PC+. Spss Inc. America Pate JS (1980) Transport and partitioning of nitrogenous solutes. Annu Rev Plant Physiol 31: 313–340 Runge M (1983) Physiology and ecology of nitrogen nutrition. In: Lange OL, Nobel PS, Osmond CB, Ziegler H (eds) Encyclopedia of plant physiology, NS vol 12C. Springer, Berlin Heidelberg New York, pp 163–200 Schmidt B, Strack D, Weidner M (1991) Nitrate reductase in needles, roots and trunk wood of spruce trees [Picea abies (L.) Karst.]. Trees 5: 215–226 Schulze ED, Lange OL, Oren R (Eds., 1989) Forest decline and air pollution. A study of spruce (Picea abies) on acid soils. Ecological Studies, vol 77. Springer, Berlin Heidelberg New York Smirnoff M, Todd P, Stewart GR (1984) The occurrence of nitrate reduction in the leaves of woody plants. Ann Bot 54: 363–374 Stewart GR, Lee JA, Orebamjo TO (1972) Nitrogen metabolism of halophytes. I. Nitrate reductase activity in Suaeda maritima. New Phytol 71: 263–267 Stewart GR, Hegarty EE, Specht RL (1988) Inorganic nitrogen assimilation in plants of Australian rainforest communities. Physiol Plant 74: 26–33 Stewart GR, Gracia CA, Hegarty EE, Specht RL (1990) Nitrate reductase activity and chlorophyll content in sun leaves of subtropical Australian closed-forest (rainforest) and open-forest communities. Oecologia 82: 544–551