Free Access
Issue |
Ann. For. Sci.
Volume 59, Number 1, January-February 2002
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Page(s) | 1 - 18 | |
DOI | https://doi.org/10.1051/forest:2001001 |
References
- 1
- Fiedler H.J., Müller W., Gewicht und Nährstoffgehalt der Nadlen eines Fichtenaltbestandes auf Thüringer Buntsandstein in Abhängigkeit von Nadelalter und Kronenposition, Beitr. Forstw. 7 (1973) 122-137.
- 2
- Finér E., Variation in needle nutrient concentrations in the crown of Scots pine on peatland, Silva Fenn. 28 (1994) 41-51.
- 3
- Florence R.G., Chung P.H., The influence of soil type on foliar nutrients in Pinus radiata plantations, Aust. For. Res. 6 (1974) 1-8.
- 4
- Friend A.D., Woodward F.I., Evolutionary and ecophysiological responses of mountain plants to the growing season environment, Adv. Ecol. Res. 20 (1990) 59-120.
- 5
- Furst A., Blatt- und nadelanalytische Untersuchungen im Rahmen des Waldschaden-Beobachtungssystems - Ergebnisse 1989 bis 1993, FBVA-Berichte. 93 (1996) 101-109.
- 6
- Giertych M., Oleksyn J., Studies on genetic variation in Scots pine (Pinus sylvestris L.) coordinated by IUFRO, Silvae Genet. 41(1992) 133-143.
- 7
- Gracan J., Peric Z., Growth of different Scots pine (Pinus sylvestris L.) provenances in Croatia, in: Unapredenje proizvodnje biomase sumskich ekosustava: znanstvena knjiga. Sumarski fakultet Sveucilista; Jastrebarsko: Sumarski institut, Zagreb, 1996, pp. 283-294. In Croatian with English summary.
- 8
- Gunia S., Zybura H., Buraczyk W., Needle length and dry matter content compared with tree height of Scots pine (Pinus sylvestris L.) of European provenances in an experimental plantation in central Poland, For. Wood Technol. 41 (1991) 69-77.
- 9
- Haissig B.E., Dickson R.E., Starch measurement in plant tissue using enzymatic hydrolysis, Physiol. Plantarum 47 (1979) 151-157.
- 10
- Hansen J., Møller I., Percolation of starch and soluble carbohydrates from plant tissue for quantitative determination with anthrone, Anal. Biochem. 68 (1975) 87-94.
- 11
- Heinsdorf M., Heinze M., Fiedler H.J., Veränderungen der Nährelementdynamik in der Nadlen einer Kiefernkultur, Forstw. Cbl. 112 (1993) 179-190.
- 12
- Helmisaari H.-S., Temporal variation in nutrient concentration of Pinus sylvestris needles, Scand. J. For. Res. 5 (1990) 177-183.
- 13
- Helmisaari H.-S., Nutrient cycling in Pinus sylvestris stands in eastern Finland, Plant Soil 168-169 (1995) 327-336.
- 14
- Höhne H., Fiedler H.J., Beitrag zur Stickstoffdüngung mittelalter Kiefernbestände. IV. Nadenanalytische Untersuchungen im 2.-4. Nachwirkungsjahr einer dreijährigen N-Düngung, Arch. Forstwes. 19 (1970) 877-898.
- 15
- Kociecki S., Results of sowing Scotch pine of various provenances in SP IUFRO 1982 experiment, Sylwan 29 (1985) 44-51. In Polish with English summary.
- 16
- Körner Ch., Palez Mendez-Riedl S., John P.C.L., Why are Bonsai plants small? A consideration of cell size, Aust. J. Plant Physiol. 16 (1989) 443-448.
- 17
- Körner Ch., Alpine plant life: Functional plant ecology of high mountain ecosystems, Springer, Berlin, New York, 1999.
- 18
- Krauss H.H., Heinsdorf D., Hippeli P., Tölle H., Untersuchungen zu Ernährung und Wachstum wirtschaftlich wichtiger Nadelbaumarten im Tiefland der DDR, Beitr. Forstw. 20 (1986) 156-164.
- 19
- Langlet O., Studier över tallens fysiologiska variabilitet och dess samband med klimatet [Study of the physiological variability of pine and its relation to the climate], Meddelenden Från Statens Skogsförsöksanstalt 29 (1936) 421-470. In Swedish with German summary; English translation by Division of Silvics, US Forest Service, Translation No. 293, 1937.
- 20
- Larsson S., Tenow O., Needle-eating insects and grazing dynamics in a mature Scots pine forest in central Sweden, in: Persson T. (Ed.) Structure and Function of Northern Coniferous Forests - An Ecosystem Study, Ecol. Bull. (Stockholm) 32 (1980) 269-306.
- 21
- Le-Thiec D., Dixon M., Garrec J.P, Distribution and variations of potassium and calcium in different cross sections of Picea abies (L.) Karst. needles and Fagus sylvatica (L.) leaves exposed to ozone and mild water stress, Ann. Sci. For. 52 (1995) 411-422.
- 22
- Linder S., Foliar analysis for detecting and correcting nutrient imbalances in Norway spruce, Ecol. Bull. (Copenhagen) 44 (1995) 178-190.
- 23
- Marschner H., Mineral Nutrition of Higher Plants. 2nd Edition. Academic Press, London, San Diego (1995).
- 24
- Mead D.J., Will G.M., Seasonal and between-tree variation in the nutrient levels in Pinus radiata foliage, N. Z. J. For. Sci. 6 (1976) 3-13.
- 25
- Nilsen P., Effect of nitrogen on drought strain and nutrient uptake in Norway spruce (Picea abies (L.) Karst.) trees, Plant Soil 172 (1995) 73-85.
- 26
- Nilsson L.O., Hüttl R.F., Johansson U.T., Jochheim H., Nutrient uptake and cycling in forest ecosystems - present status and future research directions, Plant Soil 168-169 (1995) 5-13.
- 27
- Oleksyn J., Bialobok S., Net photosynthesis, dark respiration and susceptibility to air pollution of 20 European provenances of Scots pine Pinus sylvestris L., Environ. Pollut., Ser. A 40 (1986) 287-302.
- 28
- Oleksyn J., Tjoelker M.G., Reich P.B., Growth and biomass partitioning of populations of European Pinus sylvestris L. under simulated 50
and 60
N daylengths: evidence for photoperiodic ecotypes, New Phytol. 120 (1992) 561-574.
- 29
- Oleksyn J., Chalupka W., Tjoelker M.G., Reich P.B., Geographic origin of Pinus sylvestris populations influences the effects of air pollution on flowering and growth, Water, Air, Soil Pollut. 62 (1992) 201-212.
- 30
- Oleksyn J., Modrzynski J., Tjoelker M.G., Zytkowiak R., Reich P.B., Karolewski P., Growth and physiology of Picea abies populations from elevational transects: common garden evidence for altitudinal ecotypes and cold adaptation, Funct. Ecol. 12 (1998) 573-590.
- 31
- Oleksyn J., Tjoelker M.G., Reich P.B., Adaptation to changing environment in Scots pine populations across a latitudinal gradient, Silva Fenn. 32 (1998) 129-140.
- 32
- Oleksyn J., Reich P.B., Chalupka W., Tjoelker M.G., Differential above- and below-ground biomass accumulation of European Pinus sylvestris populations in a 12-year-old provenance experiment, Scand. J. For. Res. 14 (1999) 7-17.
- 33
- Oleksyn J., Reich P.B., Karolewski P., Tjoelker M.G., Chalupka W., Nutritional status of pollen and needles of diverse Pinus sylvestris populations grown at sites with contrasting pollution,. Water, Air, Soil Pollut. 110 (1999) 195-212.
- 34
- Oleksyn J., Zytkowiak R., Reich P.B., Tjoelker M.G., Karolewski P., Ontogenetic pattern of leaf CO2 exchange, morphology and chemistry in Betula pendula trees, Trees 14 (1999) 271-281.
- 35
- Oleksyn J., Zytkowiak R., Karolewski P., Reich P.B., Tjoelker M.G., Genetic and environmental control of seasonal carbohydrate dynamics in trees of diverse Pinus sylvestris populations. Tree Physiol. 20 (2000) 837-847.
- 36
- Oleksyn J., Reich P.B., Rachwal L., Tjoelker M.G., Karolewski P., Variation in aboveground net primary production of diverse European Pinus sylvestris populations, Trees 14 (2000) 415-421.
- 37
- Oleksyn J., Reich P.B., Tjoelker M.G., Chalupka W., Biogeographic differences in shoot elongation pattern among European Scots pine populations, Forest Ecol. Manag. 148 (2001) 207-220.
- 38
- Pietiläinen P., Foliar nutrient content and 6-phosphogluconate dehydrogenase activity in vegetative buds of Scots pine on a growth disturbed area. Commun, Inst. For. Fenn. 123 (1984) 1-18.
- 39
- Prus-Glowacki W., Wojnicka-Póltorak A., Oleksyn J., Reich P.B., Industrial pollutants tend to increase genetic diversity: evidence from field-grown European Scots pine populations, Water, Air, Soil, Pollut. 116 (1999) 395-402.
- 40
- Raitio H., Sarjala T., Effect of provenance on free amino acid and chemical composition of Scots pine needles, Plant Soil 221 (2000) 231-238.
- 41
- Reich P.B., Oleksyn J., Tjoelker M.G., Relationship of aluminium and calcium to net CO2 exchange among diverse Scots pine provenances under pollution stress in Poland, Oecologia 97 (1994) 82-92.
- 42
- Reich P.B., Oleksyn J., Tjoelker M.G., Needle respiration and nitrogen concentration in Scots pine populations from a broad latitudinal range: a common garden test with field-grown trees, Funct. Ecol. 10 (1996) 768-776.
- 43
- Reich P.B., Walters M.B., Ellsworth D.S., Uhl C., Photosynthesis-nitrogen relations in Amazonian tree species. I. Patterns among species and communities, Oecologia 97 (1994) 62-72.
- 44
- Reich P.B., Walters M.B., Ellsworth D.S., From tropics to tundra: Global convergence in plant functioning, Proc. Natl. Acad. Sci. USA 94 (1997) 13730-13734.
- 45
- Reich P.B., Ellsworth D.S., Walters M.B., Vose J.M., Gresham C., Volin J.C., Bowman W.D., Generality of leaf trait relationships: a test across six biomes, Ecology 80 (1999) 1955-1969.
- 46
- Schulze E.-D., Kelliher F.M., Körner C., Lloyd J., Leuning R., Relationships among maximum stomatal conductance, ecosystem surface conductance, carbon assimilation rate, and plant nitrogen nutrition: A global ecology scaling exercise, Annu. Rev. Ecol. Syst. 25 (1994) 629-660.
- 47
- Steinbeck K., Site, height, and mineral nutrient content relations of Scotch pine provenances, Silvae Genet. 15 (1966) 42-50.
- 48
- Stephan B.R., Liesenbach M., Results of the IUFRO 1982 Scots pine (Pinus sylvestris L.) provenance experiment in southwestern Germany, Silvae Genet. 45 (1996) 342-349.
- 49
- Stockfors J., Linder S., The effect of nutrition on the seasonal course of needle respiration in Norway spruce stands, Trees 12 (1998) 130-138.
- 50
- Tjoelker M.G., Reich P.B., Oleksyn J., Changes in leaf nitrogen and carbohydrates underlie temperature and CO2 acclimation of dark respiration in five boreal tree species, Plant Cell Environ. 22 (1999) 767-778.
Abstract
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