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Seasonal development of the photosynthetic performance of Norway spruce (Picea abies [L.] Karst.) under magnesium deficiency

  • Nutrient, Growth and Allocation
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Abstract

In order to investigate the influence of different magnesium nutrition on photosynthesis, one hundred 6-year-old spruce trees derived from one clone were planted in October 1990 into a special out-door experimental construction, where they were cultivated in sand culture with an optimal supply of nutrients, except magnesium, via circulating nutrient solutions. Magnesium was added to the nutrient solutions in three different concentrations, varying from optimal to severe deficient supplies. During the first vegetative period in 1991, photosynthetic performance and carboxylation efficiency were measured under saturating light, controlled CO2 conditions, optimal temperature and humidity, using a minicuvette system.

During summer, the trees under moderate magnesium deficiency developed tip yellowing symptoms on older needles, while the youngest needles remained green with unchanged chlorophyll contents. Trees under severe magnesium deficiency showed yellowing symptoms on all needle age classes combined with decreased chlorophyll contents in the youngest needles as well. In comparison with the controls, the photosynthetic performance of the 1-year-old needles was significantly lower in both deficiency treatments. The same was observed in the youngest needles of the trees under severe deficiency. Trees under moderate deficiency treatment decreased in photosynthetic performance during the summer without reduction of chlorophyll contents. The reduction of photosynthetic rates corresponded to a decrease in carboxylation efficiency, which is taken as a measure of the activity of the enzyme ribulose-1,5-bisphosphate carboxylase. This reduction, together with the observed increase of carbohydrate contents in needles of trees growing under magnesium deficiency, led to the assumption that the photosynthetic carbonfixation is reduced as a consequence of the accumulation of carbohydrates.

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References

  • Baillon F, Dalschaert X, Grassi S and Geiss F 1988 Spruce photosynthesis: possibility of early damage diagnosis due to exposure to magnesium or potassium deficiency. Trees 2, 173–179.

    Google Scholar 

  • Baule H and Fricker C 1967 Die Düngung von Waldbäumen. Landwirtschaftlicher Verlag, München. 259 p.

    Google Scholar 

  • Benner P, Sabel P and Wild A 1988 Photosynthesis and transpiration of healthy and diseased spruce trees in the course of three vegetative periods. Trees 2, 223–232.

    Google Scholar 

  • Bergmann W 1988 Ernährungsstörungen bei Kulturpflanzen. G Fischer Verlag, Stuttgart, New York. 762 p.

    Google Scholar 

  • Beyschlag W, Wedler M, Lange O L and Heber U 1987 Einfluß einer Magnesiumdüngung auf Photosynthese und Transpiration von Fichten an einem Magnesium-Mangel standort im Fichtelgebirge. Allg. Forstz. 42, 738–741.

    Google Scholar 

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

    Google Scholar 

  • Einig W and Hampp R 1990 Carbon partitioning in Norway spruce: amounts of fructose 2,6-bisphosphate and of intermediates of starch/sucrose synthesis in relation to needle age and degree of needle loss. Trees 4, 9–15.

    Google Scholar 

  • Fink S 1991 Structural changes in conifer needles due to Mg and K deficiency. Fert. Res. 27, 23–27.

    Google Scholar 

  • Hill J 1980 The remobilization of nutrients from leaves. J. Plant Nutr. 2, 407–444.

    Google Scholar 

  • Laing W A and Christeller J T 1976 A model for the kinetics of activation and catalysis of ribulose-1,5-bisphosphate carboxylase. Biochem. J. 159, 563–570.

    Google Scholar 

  • Lange O L, Beyschlag. W, Meyer A and Tenhunen J D 1984 Determination of photosynthetic capacity of lichens in the field—a method for measurement of light response curves at saturating CO2-concentrations. Flora 175, 283–293.

    Google Scholar 

  • Lange O L, Gebel J, Schulze E-D and Walz H 1985 Eine Methode zur raschen Charakterisierung der photosynthetischen Leistungsfähigkeit von Bäumen unter Freilandbedingungen-Anwendung zur Analyse “neuartiger Waldschäden” bei der Fichte. Fortwiss. Centralbl. 104, 186–198.

    Google Scholar 

  • Lange O L, Weikert R M, Wedler M, Gebel J and Heber U 1989 Photosynthese und Nährstoffversorgung von Fichten aus einem Waldschadensgebiet auf basenarmem Untergrund. Allg. Forstz. 44, 55–65.

    Google Scholar 

  • Lichtenthaler H K 1987 Chlorophylls and carotinoids: Pigments of photosynthetic biomembranes. Meth. Enzymol. 148, 350–382.

    Google Scholar 

  • Lorimer G H, Badger M R and Andres T J 1976 The activation of ribulose-1,5-bisphosphate carboxylase by carbon dioxide and magnesium ions. Equilibra, kinetics, a suggested mechanism, and physiological implications. Biochemistry 15, 529–536.

    Google Scholar 

  • Marschner H 1986 Mineral Nutrition of Higher Plants. Academic Press, London. 674 P.

    Google Scholar 

  • Mehne-Jakobs B 1994a Effects of magnesium deficiency on physiology of Norway spruce (Plcea abies [L.] Karst.).I. Experimental design, mineral composition and symptom development. Physiol. Plant. (Submitted)

  • Mehne-Jakobs B 1994b Effects of magnesium deficiency on physiology of Norway spruce (Picea abies [L.] Karst.). II. Photosynthesis and transpiration. Physiol. Plant. (Submitted)

  • Mehne-Jakobs B 1994c The influence of magnesium deficiency treatment on carbohydrate concentrations of Norway spruce (Picea abies [L.] Karst.). Tree Physiol. (Submitted)

  • Mies E and Zöttl H W 1985 Zeitliche Änderung der Chlorophyllund Elementgehalte in den Nadeln eines gelbchlorotischen Fichtenbestandes. Forstwiss. Centralbl. 104, 1–8.

    Google Scholar 

  • Oren R, Schulze E-D, Matyssek R and Zimmermann R 1986 Estimating photosynthetic rate and annual carbon gain in conifers from specific leaf weight and leaf biomass. Oecologia 70, 187–193.

    Google Scholar 

  • Schittenhelm J, Westphal S, Wagner E and Mehne-Jakobs B 1994 Influence of magnesium deficiency needles on the antioxydative system of Norway spruce (Picea abies [L.] Karst.). J. Plant Physiol. (Submitted).

  • Throuwer S L 1974 Sink limitation and import of assimilates into mature leaves. New Phytol. 73, 685–687.

    Google Scholar 

  • Weikert R M, Wedler M, Lippert M, Schramel P and Lange O L 1989 Photosynthetic performance, chloroplast pigments, and mineral content of various needle age classes of spruce (Picea abies) with and without the new flush: an experimental approach for analysing forest decline phenomena. Trees 3, 161–172.

    Google Scholar 

  • Ziegler R and Egle K 1965 Zur quantitativen Analyse der Chloroplastenpigmente. Beitr. Biol. Pflanz. 41, 11–37.

    Google Scholar 

  • Zimmermann R, Oren R, Schulze E-D and Werk K S 1988 Performance of two Picea abies (L.) Karst. stands at different stages of decline. II. Photosynthesis and leaf conductance. Oecologia 76, 513–518.

    Google Scholar 

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Mehne-Jakobs, B. Seasonal development of the photosynthetic performance of Norway spruce (Picea abies [L.] Karst.) under magnesium deficiency. Plant Soil 168, 255–261 (1995). https://doi.org/10.1007/BF00029336

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