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Losses of birch foliage due to insect herbivory along geographical gradients in Europe: a climate-driven pattern?

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Abstract

The study reports large-scale geographical variation in foliar damage of Betula pubescens and B. pendula by leaf-chewing and leaf-mining insects in Northern and Central Europe. The data were obtained in late summer of 2004 from 90 study sites located along several latitudinal and longitudinal gradients up to 1275 km in length; repeatability of a pattern detected was checked in 2005. Foliar damage in B. pubescens due to endemic herbivory increased in Fennoscandia from 1–2% at 70°N to 5–7% at 60°N; this pattern was best explained by mean July temperatures. Higher foliar losses in southern Fennoscandia were mostly due to an increase in proportion of damaged leaves, while an average consumption per damaged leaf increased only slightly. Foliar damage in B. pendula in Fennoscandia followed the same pattern as described for B. pubescens, although the overall loss of leaf area was only ca. 70% of that in B. pubescens. In contrast, there was no geographical or climatic pattern in damage of B. pendula by insect herbivores in Central Europe; average foliar losses were around 5% between 48°N and 60°N. These data suggest that damage of northern birch forests by leaf-chewing and leaf-mining insects will at least double with expected climatic warming, while in more southern regions the effects of climate change on birch foliar losses due to insect herbivory may be small or even negligible.

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References

  • Alonso C (1999) Variation in herbivory by Yponomeuta mahalebella on its only host plant Prunus mahaleb along an elevational gradient. Ecol Entomol 24:371–379

    Article  Google Scholar 

  • Andrew NR, Hughes L (2004) Species diversity and structure of phytophagous beetle assemblages along a latitudinal gradient: predicting the potential impacts of climate change. Ecol Entomol 29:527–542

    Article  Google Scholar 

  • Andrew NR, Hughes L (2005) Herbivore damage along a latitudinal gradient: relative impacts of different feeding guilds. Oikos 108:176–182

    Article  Google Scholar 

  • Atkinson MD (1992) Betula pendula Roth. (B. verrucosa Ehrh.) and B. pubescens Ehrh. J Ecol 80:837–870

    Article  Google Scholar 

  • Bale JS, Masters GJ, Hodkinson ID, Awmack C, Bezemer TM, Brown VK, Butterfield J, Buse A, Coulson JC, Farrar J, Good JEG, Harrington R, Hartley S, Jones TH, Lindroth RL, Press MC, Symrnioudis I, Watt AD, Whittaker JB (2002) Herbivory in global climate change research: direct effects of rising temperature on insect herbivores. Glob Change Biol 8:1–16

    Article  Google Scholar 

  • Bogacheva IA (1990) Relationships between insect herbivores and plants in subarctic ecosystems. Institute of Plant and Animal Ecology, Sverdlovsk, 136 p. (In Russian)

    Google Scholar 

  • Bray IR (1964) Primary consumption in tree forest canopies. Ecology 45:165–167

    Article  Google Scholar 

  • Coley PD, Barone JA (1996) Herbivory and plant defenses in tropical forests. Ann Rev Ecolog Syst 27:305–335

    Article  Google Scholar 

  • Cyr H, Pace ML (1993) Magnitude and patterns of herbivory in aquatic and terrestrial ecosystems. Nature 361:148–150

    Article  Google Scholar 

  • Fisher AEI, Hartley SE, Young M (1999) Behavioural responses of the leaf-chewing guild to the presence of Eriocrania mines on silver birch (Betula pendula). Ecol Entomol 24:156–162

    Article  Google Scholar 

  • Fleishman E, Fay JP, Murphy DD (2000) Upsides and downsides: contrasting topographic gradients in species richness and associated scenarios for climate change. J Biogeogr 27:1209–1219

    Article  Google Scholar 

  • Gaston KJ, Genney DR, Thurlow M, Hartley SE (2004) The geographical range structure of the holly leaf-miner. IV. Effects of variation in host-plant quality. J Anim Ecol 73:911–924

    Article  Google Scholar 

  • Glasov MV (1986) Participation of herbivores in formation of primary production by spruce forests of southern taiga. In: Abaturov VV, Tishkov AA (eds) Herbivores in terrestrial biogeocoenoses: Proceedings of All-Union conference, Valdai, 3–6 June 1984. Nauka, Moscow, pp 58–64 (In Russian)

  • Grime JP (2001) Plant strategies, vegetation processes, and ecosystem properties. Wiley, Chichester

    Google Scholar 

  • Hansson L (1992) Small mammal communities on clearcuts in a latitudinal gradient. Acta Oecol 13:687–699

    Google Scholar 

  • Haukioja E, Koponen S, Ojala H (1973) Local differences in leaf consumption by invertebrates in northern Norway and Finland. Rep Kevo Subarct Res Stat 10:29–33

    Google Scholar 

  • Hoogesteger J, Karlsson PS (1992) Effects of defoliation on radial stem growth and photosynthesis in the mountain birch (Betula pubescens ssp. tortuosa). Funct Ecol 6:317–323

    Article  Google Scholar 

  • Jonsell B (2000) Betula L. In Jonsell B (ed) Flora Nordica. Lycopodiaceae to Polygonaceae, Vol 1. The Royal Swedish Academy of Sciences, Stockholm, pp 197–203

    Google Scholar 

  • Kaitaniemi P, Neuvonen S, Nyyssönen T (1999) Effects of cumulative defoliation on growth, reproduction, and insect resistance in mountain birch. Ecology 80:524–532

    Google Scholar 

  • Karlsson PS, Tenow O, Bylund H, Hoogesteger J, Weih M (2004) Determinants of mountain birch growth in situ: effects of temperature and herbivory. Ecography 27:659–667

    Article  Google Scholar 

  • Kellomäki S, Kolström M (1994) The influence of climate change on the productivity of Scots pine, Norway spruce, Pendula birch and Pubescent birch in Southern and Northern Finland. For Ecol Manag 65:201–217

    Article  Google Scholar 

  • Kozlov MV (2004) Leaf fall in white birch (Betula pubescens) is independent of leaf asymmetry. Can J Bot 82:910–913

    Article  Google Scholar 

  • Landsberg J (1989) A comparison of methods for assessing defoliation, tested on eucalypt trees. Aust J Ecol 14:423–440

    Article  Google Scholar 

  • Logan JA, Regniere J, Powell JA (2003) Assessing the impacts of global warming on forest pest dynamics. Frontiers in Ecology and the Environment 1:130–137

    Article  Google Scholar 

  • McNaughton SJ, Oesterheld M, Frank DA, Williams KJ (1989) Ecosystem-level patterns of primary productivity and herbivory in terrestrial habitats. Nature 341:142–144

    Article  Google Scholar 

  • Moen L, Oksanen L (1991) Ecosystem trends. Nature 353:510

    Article  Google Scholar 

  • Niemelä P, Chapin FS, Danell K, Bryant JP (2001) Herbivory-mediated responses of selected boreal forests to climatic change. Clim Change 48:427–440

    Article  Google Scholar 

  • Prittinen K, Pusenius J, Koivunoro K, Roininen H (2003) Genotypic variation in growth and resistance to insect herbivory in silver birch (Betula pendula) seedlings. Oecologia 137:572–577

    Article  Google Scholar 

  • Progar RA, Schowalter TD (2002) Canopy arthropod assemblage along precipitation and latitudinal gradient among Douglas-fir Pseudotsuga menziesii forests in the Pacific Northwest of the United States. Ecography 25:129–138

    Article  Google Scholar 

  • Scheidel U, Röhl S, Bruelheide H (2003) Altitudinal gradients of generalists and specialist herbivory on three montane Asteraceae. Acta Oecol 24:275–283

    Article  Google Scholar 

  • Schowalter TD, Hargrove WW, Crossley DA (1986) Herbivory in forested ecosystems. Annu Rev Entomol 31:177–196

    Article  Google Scholar 

  • Sinadsky JV (1973) Birch, its pests and diseases. Nauka, Moscow (In Russian)

  • Staley JT, Hartley SE (2002) Host-mediated effects of feeding by winter moth on the survival of Euceraphis betulae. Ecol Entomol 27:626–630

    Article  Google Scholar 

  • Valladares GR, Hartley SE (1994) Effects of scale on detecting interactions between Coleophora and Eriocrania leaf-miners. Ecol Entomol 19:257–262

    Google Scholar 

  • Virtanen T Neuvonen S, Nikula A, Varama M, Niemelä P (1996) Climate change and the risk of Neodiprion sertifer outbreaks on Scots pine. Silva Fenn 30:169–177

    Google Scholar 

  • Virtanen T, Neuvonen S, Nikula A (1998) Modelling topoclimatic patterns of egg mortality of Epirrita autumnata (Lepidoptera: Geometridae) with a Geographical Information System: predictions for current climate and warmer climate scenarios. J Appl Ecol 35:311–322

    Article  Google Scholar 

  • Volney WJA, Fleming RA (2000) Climate change and impacts of boreal forest insects. Agric Ecosyst Environ 82:283–294

    Article  Google Scholar 

  • Williams MR, Abbott I (1991) Quantifying average defoliation using leaf-level measurements. Ecology 72:1510–1511

    Article  Google Scholar 

  • Wolf A, Kozlov MV, Callaghan TV (2008) Impact of non-outbreak insect damage on vegetation in northern Europe will be greater than expected during a changing climate. Clim Change (in press)

  • Zangerl AR, Hamilton JG, Miller TJ, Crofts AR, Oxborough K, Berenbaum MR, de Lucia EH (2002) Impact of folivory on photosynthesis is greater than the sum of its holes. Proc Natl Acad Sci USA 99:1091–2088

    Article  Google Scholar 

  • Zvereva EL, Kozlov MV (2006) Consequences of simultaneous elevation of carbon dioxide and temperature for plant–herbivore interactions: a meta-analysis Glob Change Biol 12:27–41

    Article  Google Scholar 

Download references

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Correspondence to Mikhail V. Kozlov.

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Kozlov, M.V. Losses of birch foliage due to insect herbivory along geographical gradients in Europe: a climate-driven pattern?. Climatic Change 87, 107–117 (2008). https://doi.org/10.1007/s10584-007-9348-y

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