Mosses modify effects of warmer and wetter conditions on tree seedlings at the alpine treeline
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A. Michelsen | D. Wardle | E. Dorrepaal | Eveline J. Krab | M. Nilsson | J. Olofsson | Signe Lett | Laurenz M. Teuber | E. J. Krab | L. Teuber
[1] G. Phoenix,et al. A potential loss of carbon associated with greater plant growth in the European Arctic , 2012 .
[2] O. Mȧrtensson. Bryophytes of the Torneträsk area, Northern Swedish Lappland , 1958 .
[3] Luise Hermanutz,et al. Feathermoss seedbeds facilitate black spruce seedling recruitment in the forest-tundra ecotone (Labrador, Canada) , 2011 .
[4] C. Körner,et al. A world‐wide study of high altitude treeline temperatures , 2004 .
[5] R. Engstrom,et al. Circumpolar arctic tundra biomass and productivity dynamics in response to projected climate change and herbivory , 2017, Global change biology.
[6] R. Sutinen,et al. Distribution and diversity of tree species with respect to soil electrical characteristics in Finnish Lapland , 2002 .
[7] J. Cornelissen,et al. Sphagnum modifies climate-change impacts on subarctic vascular bog plants. , 2006 .
[8] M. S. Bret-Harte,et al. Warming and neighbor removal affect white spruce seedling growth differently above and below treeline , 2015, SpringerPlus.
[9] Nadejda A. Soudzilovskaia,et al. Dominant bryophyte control over high‐latitude soil temperature fluctuations predicted by heat transfer traits, field moisture regime and laws of thermal insulation , 2013 .
[10] Gaku Kudo,et al. Global assessment of experimental climate warming on tundra vegetation: heterogeneity over space and time. , 2012, Ecology letters.
[11] J. HilleRisLambers,et al. Soil alters seedling establishment responses to climate. , 2019, Ecology letters.
[12] David A. Wardle,et al. Effects of species and functional group loss on island ecosystem properties , 2005, Nature.
[13] L. C. Bliss,et al. Responses of Ranunculus sabinei and Papaver radicatum to removal of the moss layer in a high-arctic meadow , 1987 .
[14] S. Williamson,et al. Moss Mediates the Influence of Shrub Species on Soil Properties and Processes in Alpine Tundra , 2016, PloS one.
[15] Long-Term Experiments Reveal Strong Interactions Between Lemmings and Plants in the Fennoscandian Highland Tundra , 2014, Ecosystems.
[16] Thomas C. Parker,et al. Rapid carbon turnover beneath shrub and tree vegetation is associated with low soil carbon stocks at a subarctic treeline , 2015, Global change biology.
[17] J. Cornelissen,et al. Arctic warming on two continents has consistent negative effects on lichen diversity and mixed effects on bryophyte diversity , 2012 .
[18] Melanie A. Harsch,et al. Are treelines advancing? A global meta-analysis of treeline response to climate warming. , 2009, Ecology letters.
[19] I. Jónsdóttir,et al. Balancing positive and negative plant interactions: how mosses structure vascular plant communities , 2011, Oecologia.
[20] M. Germino,et al. Linking carbon balance to establishment patterns: comparison of whitebark pine and Engelmann spruce seedlings along an herb cover exposure gradient at treeline , 2011, Plant Ecology.
[21] F. Stuart Chapin,et al. The representation of arctic soils in the land surface model: The importance of mosses , 2001 .
[22] D. Wardle,et al. The Impact of Moss Species and Biomass on the Growth of Pinus sylvestris Tree Seedlings at Different Precipitation Frequencies , 2014 .
[23] D. Wardle,et al. Bryophyte traits explain climate‐warming effects on tree seedling establishment , 2017 .
[24] Daniel L. Oberski,et al. Elevation alters ecosystem properties across temperate treelines globally , 2017, Nature.
[25] A. Rigling,et al. Treeline advances along the Urals mountain range – driven by improved winter conditions? , 2014, Global change biology.
[26] J. Cornelissen,et al. A Race for Space? How Sphagnum fuscum stabilizes vegetation composition during long‐term climate manipulations , 2011 .
[27] I. Jónsdóttir,et al. Arctic mosses govern below-ground environment and ecosystem processes , 2007, Oecologia.
[28] J. Cornelissen,et al. An experimental comparison of chemical traits and litter decomposition rates in a diverse range of subarctic bryophyte, lichen and vascular plant species , 2009 .
[29] R. Longton,et al. The biology of polar bryophytes and lichens: Contents , 1988 .
[30] Nadejda A. Soudzilovskaia,et al. Comparative Ecology and Ecological Scaling Highlight: Article , 2007 .
[31] B. Graae,et al. Plant community type and small-scale disturbances, but not altitude, influence the invasibility in subarctic ecosystems. , 2013, The New phytologist.
[32] N. Fenton,et al. Differential effects of feather and Sphagnum spp. mosses on black spruce germination and growth , 2018 .
[33] E. Dorrepaal,et al. Global drivers of tree seedling establishment at alpine treelines in a changing climate , 2018, Functional Ecology.
[34] M. Germino,et al. Warming and provenance limit tree recruitment across and beyond the elevation range of subalpine forest , 2017, Global change biology.
[35] M. Lara,et al. Exclusion of brown lemmings reduces vascular plant cover and biomass in Arctic coastal tundra: resampling of a 50 + year herbivore exclosure experiment near Barrow, Alaska , 2011 .
[36] A. Bergamini,et al. Effects of light and nitrogen on morphological plasticity of the moss Calliergonella cuspidata , 2002 .
[37] A. Nordin,et al. Anthropogenic nitrogen deposition in boreal forests has a minor impact on the global carbon cycle , 2014, Global change biology.
[38] M. Nilsson,et al. Experiments on the effects of water availability and exclusion of fungal hyphae on nutrient uptake and establishment of Pinus sylvestris seedlings in carpets of the moss Pleurozium schreberi , 1998 .
[39] Nadejda A. Soudzilovskaia,et al. The importance of colony structure versus shoot morphology for the water balance of 22 subarctic bryophyte species , 2011 .
[40] F. Hagedorn,et al. Above- and belowground linkages shape responses of mountain vegetation to climate change , 2019, Science.
[41] Maja K. Sundqvist,et al. Interactive effects of vegetation type and elevation on aboveground and belowground properties in a subarctic tundra , 2011 .
[42] K. Klanderud,et al. Temperature, precipitation and biotic interactions as determinants of tree seedling recruitment across the tree line ecotone , 2015, Oecologia.
[43] B. Graae,et al. Rodent population dynamics affect seedling recruitment in alpine habitats , 2014 .
[45] Hannah Loranger,et al. Early establishment of trees at the alpine treeline: idiosyncratic species responses to temperature-moisture interactions , 2016, AoB PLANTS.
[46] D. Wardle,et al. Context dependent effects of plant species and functional group loss on vegetation invasibility across an island area gradient , 2008 .
[47] D. Wardle,et al. Contrasting Responses of Soil Microbial and Nematode Communities to Warming and Plant Functional Group Removal Across a Post-fire Boreal Forest Successional Gradient , 2015, Ecosystems.
[48] J. Cornelissen,et al. Shrub-tree interactions and environmental changes drive treeline dynamics in the Subarctic. , 2012 .
[49] Nadejda A. Soudzilovskaia,et al. How do bryophytes govern generative recruitment of vascular plants? , 2011, The New phytologist.
[50] H. During,et al. Bryophyte interactions with other plants. , 1990 .
[51] G. Frost,et al. Tall shrub and tree expansion in Siberian tundra ecotones since the 1960s , 2014, Global change biology.
[52] F. Chapin,et al. Role of Land-Surface Changes in Arctic Summer Warming , 2005, Science.
[53] Catherine D. Hamilton,et al. Microclimate control of growth rates and habitats of the boreal forest mosses, Tomenthypnum nitens and Hylocomium splendens , 1978 .
[54] M. Wilmking,et al. Effect of tree line advance on carbon storage in NW Alaska , 2006 .
[55] D. Wardle,et al. Response of feather moss associated N2 fixation and litter decomposition to variations in simulated rainfall intensity and frequency , 2011 .
[56] M. Germino,et al. Growth strategies and threshold responses to water deficit modulate effects of warming on tree seedlings from forest to alpine , 2018 .
[57] P. Convey,et al. Variable temperature effects of Open Top Chambers at polar and alpine sites explained by irradiance and snow depth , 2013, Global change biology.