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Landscape ecology

Treeline (Pinus sylvestris) landscape evolution in the Swedish Scandes – a 40-year demographic effort viewed in a broader temporal context

Pages 155-167 | Received 04 Jul 2013, Accepted 20 Jan 2014, Published online: 14 Apr 2014

References

  • Aas, B. & Faarlund, T. 2000. Forest limits and the subalpine birch belt in North Europe with focus on Norway. AmS-Varia 37, 103–147.
  • ACIA 2005. Arctic Climate Impact Assessment. Cambridge University Press, Cambridge.
  • Ågren, J. & Zackrisson, O. 1990. Age and size structure of Pinus sylvestris populations on mires in central and northern Sweden. Journal of Ecology 78, 1049–1062. 10.2307/2260951
  • Ahti, T., Hämet-Ahti, L. & Jalas, J. 1968. Vegetation zones and their sections in northwestern Europe. Annales Botanici Fennici 5, 169–211.
  • Ainsworth, E.A. & Long, S.P. 2005. What have we learned from 15 years of free-air CO2 enrichment (FACE)? New Phytologist 165, 351–372.
  • Alexandersson, H. 2006. Klimat i förändring: En jämförelse av temperatur och nederbörd 1991–2005 med 1961–1990. SMHI Faktablad 29, 1–8.
  • Batllori, E. & Gutiérrez, E. 2008. Regional tree line dynamics in response to global change in the Pyrenees. Journal of Ecology 96, 1275–1288.
  • Bergman, J., Hammarlund, D., Hannon, G., Barnekow, L. & Wohlfarth B. 2005. Deglacial vegetation succession and Holocene tree-limit dynamics in the Scandes Mountains, west-central Sweden: Stratigraphic data compared to megafossil evidence. Review of Palaeobotany and Palynology 134, 129–151. 10.1016/j.revpalbo.2004.12.005
  • Camarero, J.J. & Gutiérrez, E. 2004. Pace and pattern of recent treeline dynamics: Response of ecotones to climatic variability in the Spanish Pyrenees. Climatic Change 63, 181–200. 10.1023/B:CLIM.0000018507.71343.46
  • Campbell, I.D. & McAndrews, J.H. 1993. Forest disequilibrium caused by rapid Little Ice Age cooling. Nature 366, 336–338. 10.1038/366336a0
  • Danby, R.K. & Hik, D.S. 2007. Variability, contingency and rapid change in recent subarctic alpine tree line dynamics. Journal of Ecology 95, 352–363. 10.1111/j.1365-2745.2006.01200.x
  • Dobbertin, M. & Rigling, A. 2006. Pine mistletoe (Viscum album ssp. austriacum) contributes to Scots pine (Pinus sylvestris) mortality in the Rhone valley of Switzerland. Forest Pathology 36, 309–322. 10.1111/j.1439-0329.2006.00457.x
  • Eklund, D. 2012. Klimatsammanställning-Fjällkedjan. Länsstyrelsens rapportserie 13/2012. Länsstyrelsen i Norrbottens län, Norrköping.
  • Elliott, G.P. 2011. Influences of 20th-century warming at the upper tree line contingent on local-scale interactions: Evidence from a latitudinal gradient in the Rocky Mountains, USA. Global Ecology and Biogeography 20, 46–57. 10.1111/j.1466-8238.2010.00588.x
  • Elliott, G.P. 2012. Extrinsic regime shifts drive abrupt changes in regneration dynamics at upper treeline in the Rocky Mountains, USA. Ecology 93, 1614–1625. 10.1890/11-1220.1
  • Engelmark, O. & Zackrisson, O. 1985. Utvecklingen av ett talldominerat skogsgränsbestånd i Pite lappmark efter brand 1711. Svensk Botanisk Tidskrift 79, 243–248.
  • Frey, W. 1983. The influence of snow on growth and survival of planted trees. Arctic and Alpine Research 15, 241–251. 10.2307/1550925
  • Graumlich, L., Waggoner, L.A. & Bunn, A.C. 2005. Detecting global change at alpine treeline: Coupling paleoecology with contemporary studies. Huber, U.M., Bugman, H.K.M. & Reasoner, M.A. (eds.) Global Change and Mountain Regions, 501–508. Springer, Dordrecht.
  • Harris, S.A. 2001. Twenty years of data on climate-permafrost-active layer variations at the lower limit of alpine permafrost, Marmot Basin, Jasper National Park. Geografiska Annaler 83A, 1–14. 10.1111/1468-0459.00140
  • Harsch, M.A. & Bader, M.Y. 2011. Treeline form – a potential key to understanding treeline dynamics. Global Ecology and Biogeography 20, 582–596. 10.1111/j.1466-8238.2010.00622.x
  • Harsch, M.A., Hulme, P.E., McGlone, M.S. & Duncan, R.P. 2009. Are treelines advancing? A global meta-analysis of treeline response to climate warming. Ecology Letters 12, 1040–1049. 10.1111/j.1461-0248.2009.01355.x
  • Helama, S., Lundholm, M., Timonen, M. & Eronen, M. 2004. Dendrochronologically dated changes in the limit of pine in northernmost Finland during the past 7.5 millennia. Boreas 33, 250–259. 10.1080/03009480410001253
  • Helland, A. 1912. Traegraendser og sommervarmen. Tidsskrift for Skogbruk 20, 131–146, 169–175, 303–313.
  • Henttonen, M., Kanninen, M., Nygren, M. & Ojansuu, R. 1986. The maturation of Pinus sylvestris seeds in relation to temperature climate in northern Finland. Scandinavian Journal of Forest Research 1, 243–249. 10.1080/02827588609382415
  • Hiller, A., Boettger, T. & Kremenetski, C. 2001. Mediaeval climate warming recorded by radiocarbon dated alpine tree-line shift on the Kola Peninsula. The Holocene 11, 491–497. 10.1191/095968301678302931
  • Hofgaard, A., Harper, K.A. & Golubeva, E. 2013a. The role of circumarctic forest-tundra ecotone for Arctic biodiversity. Biodiversity 13, 174–181. 10.1080/14888386.2012.700560
  • Hofgaard, A., Tømmervik, H., Rees, G. & Hanssen, F. 2013b. Latitudinal forest advance in northernmost Norway since the early 20th century. Journal of Biogeography 40, 938–949. 10.1111/jbi.12053
  • Holtmeier, F.-K. 1974. Geoökologische Beobachtungen und Studien and der subarktischen und alpinen Waldgrenze in vergleichender Sicht. Erdwissenschaftliche Forschung 8, 1–130.
  • Holtmeier, F.-K. 2009. Mountain Timberlines – Ecology, Patchiness, and Dynamics. Springer, Dordrecht.
  • Holtmeier, F.-K. & Broll, G. 2005. Sensitivity and response of northern hemisphere altitudinal and polar treelines to environmental change at landscape and local scales. Global Ecology and Biogeography 14, 395–410. 10.1111/j.1466-822X.2005.00168.x
  • Holtmeier, F.-K. & Broll, G. 2011. Response of Scots pine (Pinus sylvestris) to warming climate at its altitudinal limit in northernmost subarctic Finland. Arctic 64, 269–280. 10.14430/arctic4118
  • Hustich, I. 1958. On the recent expansion of the Scotch pine in northern Europe. Fennia 82, 1–25.
  • Johnson, E.A., Miyaniski, K. & Kleb, H. 1994. The hazards of interpreting static age structures as shown by stand reconstructions in a Pinus contorta-Picea engelmannii forest. Journal of Ecology 82, 921–930. 10.2307/2261455
  • Junttila, O. 1986. Effects of temperature on shoot growth in northern provenance of Pinus sylvestris. Tree Physiology 1, 185–192. 10.1093/treephys/1.2.185
  • Juntunen, V., Neuvonen, S., Norokorpi, Y. & Tasanen, T. 2002. Potential for timberline advance in Northern Finland, as revealed by monitoring during 1983–99. Arctic 55, 348–361. 10.14430/arctic719
  • Kaplan, J.O. & New, M. 2006. Arctic climate change with a 2 °C global warming: Timing, climate patterns and vegetation change. Climatic Change 79, 213–241. 10.1007/s10584-006-9113-7
  • Kellomäki, S., Väisänen, H. & Kolström, T. 1997. Model computations on the effects of elevating temperature and atmospheric CO2 on the regeneration of Scots pine at the timberline in Finland. Climatic Change 37, 683–708. 10.1023/A:1005394616150
  • Kharuk, V.I., Ranson, K.J., Im, S.T. & Dvinskaya, M.L. 2009. Response of Pinus sibirica and Larix sibirica to climate change in southern Siberian alpine forest-tundra ecotone. Scandinavian Journal of Forest Research 24, 130–139. 10.1080/02827580902845823
  • Körner, C. 2005. The green cover of mountains in a changing environment. Huber, U.M., Bugman, H.K.M. & Reasoner, M.A. (eds.) Global Change and Mountain Regions, 367–375. Springer, Dordrecht.
  • Körner. 2007. Climatic treelines: Conventions, global patterns, causes. Erdkunde 61, 316–324. 10.3112/erdkunde.2007.04.02
  • Kremenetski, C.V., Sulerzhitsky, L.D. & Hantemirov, R. 1998. Holocene history of the northern range limits of some trees and shrubs in Russia. Arctic and Alpine Research 30, 317–333. 10.2307/1552004
  • Kullman, L. 1979. Change and stability in the altitude of the birch tree-limit in the southern Swedish Scandes 1915–1975. Acta Phytogeographica Suecica 65, 1–121.
  • Kullman, L. 1984. Germinability of mountain birch (Betula pubescens ssp. tortuosa) along two altitudinal transects downslope from the tree-limit in Sweden. Reports from the Kevo Subarctic Research Station 19, 11–18.
  • Kullman, L. 1986. Late Holocene reproductional patterns of Pinus sylvestris and Picea abies at the forest limit in central Sweden. Canadian Journal of Botany 64, 1682–1690. 10.1139/b86-225
  • Kullman, L. 1987. Little Ice Age decline of a cold marginal Pinus sylvestris forest in the Swedish Scandes. New Phytologist 106, 567–584. 10.1111/j.1469-8137.1987.tb00134.x
  • Kullman, L. 1993. Pine (Pinus sylvestris) tree-limit surveillance during recent decades, Central Sweden. Arctic and Alpine Research 25, 24–31. 10.2307/1551476
  • Kullman, L. 1997. Tree-limit stress and disturbance: A 25-year survey of geoecological change in the Scandes Mountains of Sweden. Geografiska Annaler 79A, 139–165. 10.1111/1468-0459.00012
  • Kullman, L. 1998. Tree-limits and montane forests: Sensitive biomonitors of climate change and variability. Ambio 27, 312–321.
  • Kullman, L. 2005. Pine (Pinus sylvestris) treeline dynamics during the past millennium – a population study in west-central Sweden. Annales Botanici Fennici 42, 95–106.
  • Kullman, L. 2007a. Treeline population monitoring of Pinus sylvestris in the Swedish Scandes, 1973–2005: Implications for tree line theory and climate change ecology. Journal of Ecology 95, 41–52. 10.1111/j.1365-2745.2006.01190.x
  • Kullman, L. 2007b. Long-term geobotanical observations of climate change impacts in the Scandes of West-Central Sweden. Nordic Journal of Botany 24, 445–467. 10.1111/j.1756-1051.2004.tb02209.x
  • Kullman, L. 2007c. Modern climate change and shifting ecological states of the subalpine/alpine landscape in the Swedish Scandes. GeoÖko 28, 187–221.
  • Kullman, L. 2010a. One century of treeline change and stability – experiences from the Swedish Scandes. Landscape Online 17, 1–31.
  • Kullman, L. 2010b. A richer, greener and smaller alpine world: Review and projection of warming-induced plant cover change in the Swedish Scandes. Ambio 39, 159–169. 10.1007/s13280-010-0021-8
  • Kullman, L. 2012. The alpine treeline ecotone in the southernmost Swedish Scandes: Dynamism on different scales. Myster, R.W. (ed.) Ecotones Between Forest and Grassland, 271–298. Springer, New York.
  • Kullman, L. 2013a. Ecological tree line history and palaeoclimate – review of megafossil evidence from the Swedish Scandes. Boreas 42, 555–567. 10.1111/bor.12003
  • Kullman, L. 2013b. Recent cooling and dynamic responses of alpine summit floras in the southern Swedish Scandes. Nordic Journal of Botany. doi:0.1111/j.1756-1051.2013.00229.x
  • Kullman, L. & Öberg, L. 2009. Post-Little Ice Age tree line rise and climate warming in the Swedish Scandes: A landscape ecological perspective. Journal of Ecology 97, 415–429. 10.1111/j.1365-2745.2009.01488.x
  • Kullman, L. & Öberg, L. 2012. Melting glaciers and ice patches in Swedish Lapland provide new insights into the Holocene arboreal history. GeoÖko 33, 121–146.
  • Leonelli, G., Pelfini, M., Morra di Cella, U. & Garavaglia, V. 2011. Climate warming and the recent treeline shift in the European Alps: The role of geomorphological factors in high-altitude sites. Ambio 40, 264–273. 10.1007/s13280-010-0096-2
  • Lloyd, A.H. 2005. Ecological histories from Alaskan tree lines provide insight into future change. Ecology 86, 1687–1695. 10.1890/03-0786
  • MacDonald, G.M. 2010. Some Holocene palaeoclimatic and palaeoenvironmental perspectives on Arctic and Subarctic climate warming and the IPCC 4th assessment report. Journal of Quaternary Science 25, 39–47. 10.1002/jqs.1307
  • Malanson, G.P., Resler, L.M., Bader, M.Y., Holtmeier, F.-K., Butler, D.R., Weiss, D.J., Daniels, L.D. & Fagre, D.B. 2011. Mountain treelines: A roadmap for research orientation. Arctic, Antarctic, and Alpine Research 43, 167–177. 10.1657/1938-4246-43.2.167
  • Martinez-Vilalta, J., Lopez, B.C., Adell, N., Badiella, L. & Niyerola, M. 2008. Twentieth century increase of Scots pine radial growth in NE Spain shows strong climate interactions. Global Change Biology 14, 2868–2881. 10.1111/j.1365-2486.2008.01685.x
  • Moen, J., Aune, K., Edenius, L. & Angerbjörn, A. 2004. Potential effects of climate change on treeline position in the Swedish mountains. Ecology and Society 16, 1–10.
  • Mossberg, B. & Stenberg, L. 2003. Den Nya Nordiska Floran. Wahlström & Widstarnd, Stockholm.
  • Nicolussi, K. & Patzelt, G. 2000. Discovery of early Holocene wood and peat on the forefield of the Pasterze Glacier, Eastern Alps, Austria. The Holocene 10, 191–199. 10.1191/095968300666855842
  • Öberg, L. & Kullman, L. 2011. Recent glacier recession – a new source of postglacial treeline and climate history in the Swedish Scandes. Landscape Online 26, 1–38.
  • Parn, H. 2012. Changes in the radial growth of two consecutive generations of Scots pine (Pinus sylvestris) stands. Baltic Forestry 18, 12–24.
  • Paus, A. 2010. Vegetation and environment of the Rødalen alpine area, Central Norway, with emphasis of the early Holocene. Vegetation History and Archaeobotany 19, 29–51. 10.1007/s00334-009-0228-4
  • Paus, A. 2013. Human impact, soil erosion, and vegetation response lags to climate change: Challenges for mid-Scandinavian pollen-based transfer-function temperature reconstructions. Vegetation History and Archaeobotany 22, 269–284.
  • Payette, S. 2007. Contrasted dynamics of northern Labrador tree lines caused by climate change and migrational lag. Ecology 88, 770–780. 10.1890/06-0265
  • Payette, S. & Filion, L. 1985. White spruce expansion at the tree line and recent climate change. Canadian Journal of Forest Research 15, 241–251. 10.1139/x85-042
  • Pearce, C.M., McLennan, D. & Cords, L.D. 1988. The evolution and maintenance of white spruce woodland on the Mackenzie Delta, N.W.T. Canada. Holarctic Ecology 11, 248–288.
  • Peet, R.K. 1981. Forest vegetation of the Colorado Front Range: Composition and dynamics. Vegetatio 45, 3–75. 10.1007/BF00240202
  • Rickebusch, S., Lischke, H., Bugmann, H., Guisan, A. & Zimmermann, N.E. 2007. Understanding the low-temperature limitations to forest growth through calibration of a forest dynamics model with tree-ring data. Forest Ecology and Management 246, 251–263. 10.1016/j.foreco.2007.04.030
  • Säppänen, M. 1961. On the accumulation and the increasing of snow in pine dominated forest in Finland. Fennia 86, 1–51.
  • Shiyatov, S.G. 2003. Rates of change in the upper treeline ecotone in the Polar Ural Mountains. PAGES News 11, 8–10.
  • Shiyatov, S.G., Terent'ev, M.M., Fomin, V.V. & Zimmermann, N.E. 2007. Altitudinal and horizontal shifts of the upper boundaries of open and closed forests in the Polar Urals in the 20th century. Journal of Ecology 38, 223–227.
  • Slot, M., Wirth, C., Schumacher, J., Mohren, G.M.J., Shibistova, O., Lloyd, J. & Ensminger, I. 2005. Regeneration patterns in boreal Scots pine glades linked to cold-induced photoinhibition. Tree Physiology 25, 1139–1150. 10.1093/treephys/25.9.1139
  • SMHI. 2012. Juni 2012 – Lufttemperatur och vind. http://data.smhi.se/met/climate/time_series/month/vov_pdf/SMHI_vov_temperature_wind_jun12.pdf ( accessed 4 March 2014).
  • Smith, H. 1957. En botanisk undersökning av Neans dalgång. Svenska Vetenskapsakademiens Avhandlingar i Naturskyddsärenden 16, 1–21.
  • Stöcklin, J. & Körner, C. 1999. Recruitment and mortality of Pinus sylvestris near the Nordic treeline: The role of climatic change and herbivory. Ecological Bulletins 47, 168–177.
  • Sturm, M., Schimel, J., Michaelson, G., Welker, J.M., Oberbauer, S.F., Liston, G.E., Fahnestock, J. & Romanovsky, V.E. 2005. Winter biological processes could help convert arctic tundra to shrubland. BioScience 55, 17–26. 10.1641/0006-3568(2005)055[0017:WBPCHC]2.0.CO;2
  • Tinner, W. & Kaltenrieder, P. 2005. Rapid responses of high-mountain vegetation to early Holocene environmental changes in the Swiss Alps. Journal of Ecology 93, 936–947. 10.1111/j.1365-2745.2005.01023.x
  • Tranquillini, W. 1979. Physiological Ecology of the Alpine Timberline. Springer-Verlag, Berlin.
  • Trant, A.J., Jameson, R.G. & Hermanutz, L. 2011. Persistence at the treeline: Old trees as opportunists. Arctic 64, 367–370. 10.14430/arctic4126
  • Van Bogaert, R., Haneca, K., Hoogesteger, J., Jonasson, C., De Dapper, M. & Callaghan, T.V. 2011. A century of tree line changes in sub-Arctic Sweden shows local and regional variability and only minor influence of 20th century warming. Journal of Biogeography 38, 907–921. 10.1111/j.1365-2699.2010.02453.x
  • Veijola, P. 1998. The northern timberline and timberline forests in Fennoscandia. Finnish Research Institute Research Paper 672, 1–242.
  • Villalba, R. & Veblen, T.T. 1997. Regional patterns of tree population age structures in northern Patagonia: Climate and disturbance influences. Journal of Ecology 85, 113–124. 10.2307/2960643
  • Walker, X., Henry, G.H.R., McLeod, K. & Hofgaard, A. 2012. Reproduction and seedling establishment of Picea glauca across the northernmost forest-tundra region in Canada. Global Change Biology 18, 3202–3211. 10.1111/j.1365-2486.2012.02769.x

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