Shrub expansion at the forest–tundra ecotone: spatial heterogeneity linked to local topography
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[1] J. Johnstone,et al. DEVELOPMENTAL PLASTICITY ALLOWS BETULA NANA TO DOMINATE TUNDRA SUBJECTED TO AN ALTERED ENVIRONMENT , 2001 .
[2] S. Goetz,et al. Satellite-observed photosynthetic trends across boreal North America associated with climate and fire disturbance. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[3] M. Bret-Harte,et al. Vegetation responses in Alaskan arctic tundra after 8 years of a summer warming and winter snow manipulation experiment , 2005 .
[4] Ian Olthof,et al. Treeline vegetation composition and change in Canada's western Subarctic from AVHRR and canopy reflectance modeling , 2010 .
[5] R. Fortier,et al. Recent climate variations in the subarctic inferred from three borehole temperature profiles in northern Quebec, Canada , 2007 .
[6] D. Walker,et al. Greening of arctic Alaska, 1981–2001 , 2003 .
[7] S. Woodin,et al. Impacts of increased nitrogen supply on high Arctic heath: the importance of bryophytes and phosphorus availability. , 2001, The New phytologist.
[8] M. Sturm,et al. Climate change: Increasing shrub abundance in the Arctic , 2001, Nature.
[9] A. McGuire,et al. Land Cover Change on the Seward Peninsula: The Use of Remote Sensing to Evaluate the Potential Influences of Climate Warming on Historical Vegetation Dynamics , 2001 .
[10] S. Payette,et al. Spatially explicit fire-climate history of the boreal forest-tundra (Eastern Canada) over the last 2000 years , 2008, Philosophical Transactions of the Royal Society B: Biological Sciences.
[11] Roger A. Pielke,et al. Modelled changes in arctic tundra snow, energy and moisture fluxes due to increased shrubs , 2002 .
[12] L. Filion. A relationship between dunes, fire and climate recorded in the Holocene deposits of Quebec , 1984, Nature.
[13] Donald A. Walker,et al. NDVI patterns and phytomass distribution in the circumpolar Arctic , 2006 .
[14] Abigail L. Bristow,et al. Europe, IPCC WGII Fourth Assessment Report Climate Change 2007: Impacts, adaptation and vulnerability. , 2007 .
[15] A. Michelsen,et al. RESPONSES IN MICROBES AND PLANTS TO CHANGED TEMPERATURE, NUTRIENT, AND LIGHT REGIMES IN THE ARCTIC , 1999 .
[16] B. Tremblay. Augmentation récente du couvert ligneux érigé dans les environs de Kangiqsualujjuaq (Nunavik, Québec) , 2010 .
[17] Kate M. Buckeridge,et al. Soil nitrogen cycling rates in low arctic shrub tundra are enhanced by litter feedbacks , 2010, Plant and Soil.
[18] S. Hobbie. Temperature and plant species control over litter decomposition in Alaskan tundra , 1996 .
[19] C. Tucker,et al. Interannual variations in satellite-sensed vegetation index data from 1981 to 1991 , 1998 .
[20] S. Payette,et al. Holocene Relict Woodlands at the Eastern Canadian Treeline , 1993, Quaternary Research.
[21] C. Tucker,et al. Increased plant growth in the northern high latitudes from 1981 to 1991 , 1997, Nature.
[22] M. Sturm,et al. The evidence for shrub expansion in Northern Alaska and the Pan‐Arctic , 2006 .
[23] Ranga B. Myneni,et al. Correction to “Interannual variations in satellite‐sensed vegetation index data from 1981 to 1991” by R. B. Myneni et al. , 1998 .
[24] I. M. Weis,et al. The population biology of the arctic dwarf birch, Betula glandulosa: seed rain and the germinable seed bank , 1988 .
[25] Brian F. CHABOTt. WINTER WATER RELATIONS OF TREE-LINE PLANT SPECIES ON MT. WASHINGTON, NEW HAMPSHIRE , 1978 .
[26] S. Boudreau,et al. Black spruce regeneration at the treeline ecotone: synergistic impacts of climate change and caribou activityThis article is a contribution to the series Tree recruitment, growth, and distribution at the circumpolar forest–tundra transition. , 2011 .
[27] Honglang Xiao,et al. Dendroclimatological Investigations of Sea Buckthorn (Hippophae rhamnoides) and Reconstruction of the Equilibrium Line Altitude of the July First Glacier in the Western Qilian Mountains, Northwestern China , 2007 .
[28] T. Callaghan,et al. Strategies of Survival in Plants of the Fennoscandian Tundra , 1991 .
[29] Controls on Radial Growth of Mountain Big Sagebrush and Implications for Climate Change , 2009 .
[30] Martin Hallinger,et al. Establishing a missing link: warm summers and winter snow cover promote shrub expansion into alpine tundra in Scandinavia. , 2010, The New phytologist.
[31] K. Nadelhoffer,et al. Changes in Live Plant Biomass, Primary Production, and Species Composition along a Riverside Toposequence in Arctic Alaska, U.S.A. , 1996 .
[32] G. Shaver,et al. THE VERTICAL DISTRIBUTION OF LIVE VASCULAR PHYTOMASS IN COTTONGRASS TUSSOCK TUNDRA , 1979 .
[33] B. Forbes,et al. Russian Arctic warming and ‘greening’ are closely tracked by tundra shrub willows , 2010 .
[34] D. Verbyla. The greening and browning of Alaska based on 1982-2003 satellite data , 2008 .
[35] Vladimir E. Romanovsky,et al. Interannual variations of the thermal regime of the active layer and near‐surface permafrost in northern Alaska , 1995 .
[36] Scott J. Goetz,et al. Shrub expansion and climate feedbacks in Arctic tundra , 2012 .
[37] A. Bräuning,et al. Growth‐ring variations of dwarf shrubs reflect regional climate signals in alpine environments rather than topoclimatic differences , 2008 .
[38] J. Welker,et al. Winter Biological Processes Could Help Convert Arctic Tundra to Shrubland , 2005 .
[39] F. Stuart Chapin,et al. Primary and secondary stem growth in arctic shrubs: implications for community response to environmental change , 2002 .
[40] F. Chapin,et al. Physiological and Growth Responses of Arctic Plants to a Field Experiment Simulating Climatic Change , 1996 .
[41] J. Schimel,et al. Moisture effects on microbial activity and community structure in decomposing birch litter in the Alaskan taiga , 1999 .