Aerts R (1996) Nutrient resorption from senescing leaves of perennials: are there general patterns? J Ecol 84:597–608. doi:10.2307/2261481
Article
Google Scholar
Aerts R, Bobbink R (1999) The impact of atmospheric nitrogen deposition on vegetation processes in terrestrial, non-forest ecosystems. In: Langan SJ (ed) The impact of nitrogen deposition on natural and semi-natural ecosystems. Kluwer, the Netherlands, pp 85–122
Aerts R, Chapin FS (2000) The mineral nutrition of wild plants revisited: a re-evaluation of processes and patterns. Adv Ecol Res 30:1–67. doi:10.1016/S0065-2504(08)60016-1
CAS
Google Scholar
Aerts R, Wallén B, Malmer N (1992) Growth-limiting nutrients in Sphagnum-dominated bogs subject to low and high atmospheric nitrogen supply. J Ecol 80:131–140. doi:10.2307/2261070
Article
Google Scholar
Anderson W, Eickmeier WG (2000) Nutrient resorption in Claytonia virginica L.: implications for deciduous forest nutrient cycling. Can J Bot 78:832–839. doi:10.1139/b00-056
Google Scholar
Birk EM, Vitousek PM (1986) Nitrogen availability and nitrogen use efficiency in loblolly pine stands. Ecology 67:69–79. doi:10.2307/1938504
Article
Google Scholar
Bobbink R, Hornung M, Roelofs JGM (1998) The effects of air-borne nitrogen pollutants on species diversity in natural and semi-natural European vegetation. J Ecol 86:717–738. doi:10.1046/j.1365-2745.1998.8650717.x
CAS
Article
Google Scholar
Bragazza L, Tahvanainen T, Kutnar L, Rydin H, Limpens J, Hájek M, Grosvernier P, Hájek T, Hajkova P, Hansen I, Iacumin P, Gerdol R (2004) Nutritional constraints in ombrotrophic Sphagnum plants under increasing atmospheric nitrogen deposition in Europe. New Phytol 163:609–616. doi:10.1111/j.1469-8137.2004.01154.x
Article
Google Scholar
Bubier JL, Moore TR, Bledzki LA (2007) Effects of nutrient addition on vegetation and carbon cycling in an ombrotrophic bog. Global Change Biol 13:1168–1186. doi:10.1111/j.1365-2486.2007.01346.x
Article
Google Scholar
Bubier JL, Smith R, Juutinen S, Moore TR, Minocha R, Long S, Minocha S (2011) Effects of nutrient addition on leaf chemistry, morphology, and photosynthetic capacity of three bog shrubs. Oecologia 167:355–368. doi:10.1007/s00442-011-1998-9
PubMed
Article
Google Scholar
Canadian Climate Normals (1971–2000) National climate data and information archive. http://climate.weatheroffice.ec.gc.ca/climate_normals. Accessed 01-April-2013
Chapin FS, Kedrowski RA (1983) Seasonal changes in nitrogen and phosphorus fractions and autumn re-translocation in evergreen and deciduous taiga trees. Ecology 64:376–391. doi:10.2307/1937083
CAS
Article
Google Scholar
Chapin FS, Moilanen L (1991) Nutritional controls over nitrogen and phosphorus resorption from Alaskan birch leaves. Ecology 72:709–715. doi:10.2307/2937210
Article
Google Scholar
Clarkson DT, Hanson JB (1980) The mineral nutrition of higher plants. Annu Rev Plant Physiol 31:239–298. doi:10.1146/annurev.pp.31.060180.001323
CAS
Article
Google Scholar
Diehl P, Mazzarino MJ, Funes F, Fontenla S, Gobbi M, Ferrari J (2003) Nutrient conservation strategies in native Andean-Patagonian forests. J Veg Sci 14:63–70. doi:10.1111/j.1654-1103.2003.tb02128.x
Article
Google Scholar
Eckstein RL, Karlsson PS, Weih M (1998) The significance of resorption of leaf resources for shoot growth in evergreen and deciduous woody plants from a subarctic environment. Oikos 81:567–575. doi:10.2307/3546777
Article
Google Scholar
Escudero A, Delarco JM, Sanz IC, Ayala J (1992) Effects of leaf longevity and re-translocation efficiency on the retention time of nutrients in the leaf biomass of different woody species. Oecologia 90:80–87. doi:10.1007/BF00317812
Article
Google Scholar
Feller IC, McKee KL, Whigham DF, O’Neill JP (2003) Nitrogen vs. phosphorus limitation across an ecotonal gradient in a mangrove forest. Biogeochemistry 62:145–175. doi:10.1023/A:1021166010892
CAS
Article
Google Scholar
Glaser PH (1992) Raised bogs in eastern North America—regional controls for species richness and floristic assemblages. J Ecol 80:535–554. doi:10.2307/2260697
Article
Google Scholar
Gorham E (1991) Northern peatlands: role in the carbon cycle and probable responses to climatic warming. Ecol Appl 1:182–195. doi:10.2307/1941811
Article
Google Scholar
Gunnarsson U, Rydin H (2000) Nitrogen fertilization reduces Sphagnum production in bog communities. New Phytol 147:527–537. doi:10.1046/j.1469-8137.2000.00717.x
CAS
Article
Google Scholar
Güsewell S (2005) Nutrient resorption of wetland graminoids is related to the type of nutrient limitation. Funct Ecol 19:344–354. doi:10.1111/j.1365-2435.2005.00967.x
Article
Google Scholar
Hoosbeek MR, Van Breemen N, Vasander H, Buttler A, Berendse F (2002) Potassium limits potential growth of bog vegetation under elevated atmospheric CO2 and N deposition. Global Change Biol 8:1130–1138. doi:10.1046/j.1365-2486.2002.00535.x
Article
Google Scholar
Karlsson PF (1994) The significance of internal nutrient cycling in branches for growth and reproduction of Rhododendron lapponicum. Oikos 70:191–200. doi:10.2307/3545630
Article
Google Scholar
Killingbeck KT (1986) The terminological jungle revisited: making a case for use of the term resorption. Oikos 46:263–264. doi:10.2307/3565477
Article
Google Scholar
Killingbeck KT (1996) Nutrients in senesced leaves: keys to the search for potential resorption and resorption proficiency. Ecology 77:1716–1727. doi:10.2307/2265777
Article
Google Scholar
Knops JMH, Koenig WD, Nash TH (1997) On the relationship between nutrient use efficiency and fertility in forest ecosystems. Oecologia 110:550–556. doi:10.2307/4221644
Article
Google Scholar
Kobe RK, Lepczyk CA, Iyer M (2005) Resorption efficiency decreases with increasing green leaf nutrients in a global data set. Ecology 86:2780–2792. doi:10.1890/04-1830
Article
Google Scholar
Lambers H, Chapin FS, Pons TL (1998) Plant physiological ecology. Springer, New York
Book
Google Scholar
Li XF, Zheng XB, Han SJ, Zheng JQ, Li TG (2010) Effects of nitrogen additions on nitrogen resorption and use efficiencies and foliar litterfall of six tree species in a mixed birch and poplar forest, northeastern China. Can J For Res 40:2256–2261. doi:10.1139/X10-167
CAS
Article
Google Scholar
Loneragan JF, Snowball K, Robson AD (1976) Remobilization of nutrients and its significance in plant nutrition. In: Wardlaw IF, Passioura JB (eds) Transport and transfer processes in plants. Academic Press, New York, pp 463–469
Chapter
Google Scholar
Moore T, Blodau C, Turunen J, Roulet N, Richard PJH (2004) Patterns of nitrogen and sulfur accumulation and retention in ombrotrophic bogs, eastern Canada. Global Change Biol 11:356–367. doi:10.1111/j.1365-2486.2004.00882.x
Article
Google Scholar
Murphy J, Riley JP (1962) A modified single solution method for determination of phosphate in natural waters. Anal Chim Acta 26:31–36. doi:10.1016/S0003-2670(00)88444-5
Article
Google Scholar
Nambiar EKS, Fife DN (1991) Nutrient re-translocation in temperate conifers. Tree Physiol 9:185–207. doi:10.1093/treephys/9.1-2.185
CAS
Article
Google Scholar
Näsholm T, Ekblad A, Nordin A, Giesler R, Högberg M, Högberg P (1998) Boreal forest plants take up organic nitrogen. Nature 392:914–916. doi:10.1038/31921
Article
Google Scholar
Negi GCS, Singh SP (1993) Leaf nitrogen dynamics with particular reference to re-translocation in evergreen and deciduous tree species of Kumaun Himalaya. Can J For Res 23:349–357. doi:10.1139/x93-051
CAS
Article
Google Scholar
Nordell KO, Karlsson PS (1995) Resorption of nitrogen and dry matter prior to leaf abscission: variation among individuals, sites and years in the mountain birch. Funct Ecol 9:326–333. doi:10.2307/2390581
Article
Google Scholar
Olde Venterink H, Wassen MJ, Verkroost AWM, de Ruiter PC (2003) Species richness-productivity patterns differ between N-, P-, and K-limited wetlands. Ecology 84:2191–2199. doi:10.1890/01-0639
Article
Google Scholar
Parkinson JA, Allen SE (1975) Wet oxidation procedure suitable for determination of nitrogen and mineral nutrients in biological material. Commun Soil Sci Plan 6:1–11. doi:10.1080/00103627509366539
CAS
Article
Google Scholar
Peri PL, Lasagno RG (2010) Biomass, carbon and nutrient storage for dominant grasses of cold temperate steppe grasslands in southern Patagonia, Argentina. J Arid Environ 74:23–34. doi:10.1016/j.jaridenv.2009.06.015
Article
Google Scholar
Pugnaire FI, Chapin FS (1993) Controls over nutrient resorption from leaves of evergreen Mediterranean species. Ecology 74:124–129. doi:10.2307/1939507
Article
Google Scholar
Ralhan PK, Singh SP (1987) Dynamics of nutrients and leaf mass in central Himalayan forest trees and shrubs. Ecology 68:1974–1983. doi:10.2307/1939888
Article
Google Scholar
Reader RJ (1980) Effects of nitrogen fertilizer, shade, and the removal of new growth on longevity of overwintering bog ericad leaves. Can J Bot 58:1737–1743. doi:10.1139/b80-201
Article
Google Scholar
Reed SC, Townsend AR, Davidson EA, Cleveland CC (2012) Stoichiometric patterns in foliar nutrient resorption across multiple scales. New Phytol 196:173–180. doi:10.1111/j.1469-8137.2012.04249.x
CAS
PubMed
Article
Google Scholar
Rejmánková E (2005) Nutrient resorption in wetland macroPhytes: comparison across several regions of different nutrient status. New Phytol 167:471–482. doi:10.1111/j.1469-8137.2005.01449.x
PubMed
Article
Google Scholar
Rustad LE, Campbell JL, Marion GM, Norby RJ, Mitchell MJ, Hartley AW, Cornelissen JHC, Gurevitch J, Gcte-News (2001) A meta-analysis of the response of soil respiration, net nitrogen mineralization, and aboveground plant growth to experimental ecosystem warming. Oecologia 126:543–562 doi: 10.1007/s004420000544
Rydin H, Jeglum JK (2006) The biology of peatlands. Oxford University Press, New York
Book
Google Scholar
Shipley B, Vile D, Garnier E, Wright IJ, Poorter H (2005) Functional linkages between leaf traits and net photosynthetic rate: reconciling empirical and mechanistic models. Funct Ecol 19:602–615. doi:10.1111/j.1365-2435.2005.01008.x
Article
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 50:2227–2233. doi:10.1139/b72-289
CAS
Article
Google Scholar
Sterner RW, Elser J (2002) Ecological stoichiometry: the biology of elements from molecules to the biosphere. Princeton University Press, New Jersey
Google Scholar
Straker CJ (1996) Ericoid mycorrhiza: ecological and host specificity. Mycorrhiza 6:215–225. doi:10.1007/s005720050129
Article
Google Scholar
Turunen J, Roulet NT, Moore TR, Richard PJH (2004) Nitrogen deposition and increased carbon accumulation in ombrotrophic peatlands in eastern Canada. Global Biogeochem Cycles 18:GB3002 doi: 10.1029/2003gb002154
van den Driessche R, Rieche K (1974) Prediction of mineral nutrient status of trees by foliar analysis. Bot Rev 40:347–394. doi:10.1007/BF02860066
Article
Google Scholar
van Heerwaarden LM, Toet S, Aerts R (2003a) Current measures of nutrient resorption efficiency lead to a substantial underestimation of real resorption efficiency: facts and solutions. Oikos 101:664–669. doi:10.1034/j.1600-0706.2003.12351.x
Article
Google Scholar
van Heerwaarden LM, Toet S, Aerts R (2003b) Nitrogen and phosphorus resorption efficiency and proficiency in six sub-arctic bog species after 4 years of nitrogen fertilization. J Ecol 91:1060–1070. doi:10.1046/j.1365-2745.2003.00828.x
Article
Google Scholar
Vergutz L, Manzoni S, Porporato A, Novais RF, Jackson RB (2012) Global resorption efficiencies and concentrations of carbon and nutrients in leaves of terrestrial plants. Ecol Monogr 82:205–220. doi:10.1890/11-0416.1
Article
Google Scholar
Verhoeven JTA, Keuter A, Logtestijn RV, Kerkhoven MB, Wassen M (1996) Control of local nutrient dynamics in mires by regional and climatic factors: a comparison of Dutch and Polish sites. J Ecol 84:647–656. doi:10.2307/2261328
Article
Google Scholar
Vitousek PM (1998) Foliar and litter nutrients, nutrient resorption, and decomposition in Hawaiian Metrosideros polymorpha. Ecosystems 1:401–407. doi:10.1007/s100219900033
CAS
Article
Google Scholar
Wright IJ, Westoby M (2003) Nutrient concentration, resorption and lifespan: leaf traits of Australian sclerophyll species. Funct Ecol 17:10–19. doi:10.1046/j.1365-2435.2003.00694.x
Article
Google Scholar
Yuan ZY, Chen HYH (2009a) Global-scale patterns of nutrient resorption associated with latitude, temperature and precipitation. Global Ecol Biogeogr 18:11–18. doi:10.1111/j.1466-8238.2008.00425.x
Article
Google Scholar
Yuan ZY, Chen HYH (2009b) Global trends in senesced-leaf nitrogen and phosphorus. Global Ecol Biogeogr 18:532–542. doi:10.1111/j.1466-8238.2009.00474.x
Article
Google Scholar
Yuan ZY, Li LH, Han XG, Huang JH, Jiang GM, Wan SQ, Zhang WH, Chen QS (2005) Nitrogen resorption from senescing leaves in 28 plant species in a semi-arid region of northern China. J Arid Environ 63:191–202. doi:10.1016/j.jaridenv.2005.01.023
Article
Google Scholar