Pan, Y. et al. A big and protracted carbon sink on the planet’s forests. Science 333, 988–993 (2011).
Tarnocai, C. et al. Swimming pools of soil natural carbon within the northern circumpolar permafrost area. world Biogeoch. Cycles 23, 1–11 (2009).
Google Scholar
Davidson, EA & Janssens, IA Temperature sensitivity of soil carbon elimination and local weather change feedbacks. Nature 440, 165-173 (2006).
Wardle, DA, Nilsson, MC, Zackrisson, O. & Gallet, C. Determinants of litter-mixing results in a Swedish boreal forest. Soil Biol. Biochem. 35, 827-835 (2003).
Moen, J., Cairns, DM & Lafon, CW Components structuring treeline ecotone in Fennoscandia. Plant Ecol. Diver. 1, 77-87 (2008).
Google Scholar
Sjögersten, S. & Wookey, PA Local weather and useful resource qc of soil respiration in a forest-tundra ecotone in Swedish Lapland. Soil Biol. Biochem. 34, 1633-1646 (2002).
Google Scholar
Sjögersten, S., Turner, BL, Mahieu, N., Condron, LM & Wookey, PA Soil natural matter biochemistry and potential vulnerability to climatic modifications within the forest-tundra ecotone within the Fennoscandian mountains. world Alter Biol. 9, 759-772 (2003).
IPCC. IPCC experiences world warming of 1.5°C. IPCC Sr15. 2, 17-20 (2018).
Google Scholar
Hobbie, SE, Nadelhoffer, KJ & Högberg, P. A Synthesis: The Function of Vitamins as Constraints on Carbon Balances in Boreal and Arctic Areas. Plant Soil 242, 163-170 (2002).
DeLuca, TH & Boisvenue, C. Boreal forest soil carbon: distribution, perform, and modelling. Forestry 85, 161–184 (2012).
Google Scholar
Hansson, A., Dargusch, P. & Shulmeister, J. A evaluate of contemporary treeline migration, the components driving it, and the impression on carbon storage. J.Mt.Sci. 18, 291-306 (2021).
Google Scholar
Sjögersten, S. & Wookey, PA The consequences of local weather change on ecosystem carbon dynamics within the Scandinavian mountain birch forest-tundra-heathland ecotone. Ambio 38, 2-10 (2009).
Rustad, LE et al. A meta-analysis of the response of soil respiration, internet nitrogen mineralization and above-ground plant development to experimental ecosystem warming. Oecologia 126, 543-562 (2001).
Kullman, L. Speedy improve within the vary of tree and shrub species in Swedish Scandinavia. J.Ecol. 90, 68-77 (2002).
Google Scholar
Lloyd, AH & Fastie, CL Latest modifications in forest distribution and construction on the treeline in inside Alaska. Ecoscience 10, 176-185 (2003).
Google Scholar
Truong, C., Palmé, AE & Felber, F. Latest invasion of mountain birch Betula pubescens ssp. tortuosa above the tree line resulting from local weather change: genetic and ecological examine in northern Sweden. J Evolution. biol. 20, 369-380 (2007).
Danby, RK & Hik, DS Variability, contingency, and fast change in latest subarctic alpine treeline dynamics. J.Ecol. 95, 352-363 (2007).
Google Scholar
Harsch, MA, Hulme, PE, McGlone, MS & Duncan, RP Are the tree traces transferring forward? A worldwide meta-analysis of the treeline response to local weather warming. Ecol. Latvian. 12, 1040-1049 (2009).
Tingstad, L., Olsen, SL, Klanderud, Ok., Vandvik, V. & Ohlson, M. Temperature, precipitation, and biotic interactions as determinants of tree seedling recruitment throughout the treeline ecotone. Oecologia 179, 599-608 (2015).
Hofgaard, A. Interrelationships between tree line place, biodiversity, land use and local weather change in central Scandinavia of Norway. Annika Hofgaard Supply Glob. Ecol. biogeogr. Latvian. 6(6), 419-429 (1997).
Google Scholar
Olsson, EGA, Austrheim, G. & Grenne, SN Panorama change patterns in Bergen, land use and environmental variety, Central Norway 1960–1993. Panorama Ecol. 15, 155-170 (2000).
Google Scholar
Weintraub, MN & Schimel, JP Interactions between carbon and nitrogen mineralization and soil natural matter chemistry in arctic tundra soils. Ecosystems 6, 129–143 (2003).
Melillo, JM et al. Suggestions of soil warming and the carbon cycle on the local weather system. Science 298, 2173-2176 (2002).
Kammer, A. et al. Treeline shifts within the Ural Mountains have an effect on soil natural matter dynamics. world Alter Biol. 15, 1570-1583 (2009).
Parker, TC, Subke, JA & Wookey, PA Speedy carbon turnover amongst shrub and tree vegetation is related to low soil carbon shares at a subarctic treeline. world Amend Biol. 21, 2070–2081 (2015).
Velocity, JDM et al. Steady and discontinuous variation in ecosystem carbon shares with elevation above a treeline ecotone. Biogeowissenschaften 12, 1615–1627 (2015).
Hartley, IP et al. A possible carbon loss related to larger plant development within the European Arctic. nat. Local weather. change. 2, 875-879 (2012).
Yoo, Ok., Amundson, R., Heimsath, AM & Dietrich, WE. Spatial patterns of soil natural carbon on slopes: integration of geomorphological processes and the organic carbon cycle. Geoderma 130, 47-65 (2006).
Zhu, M. et al. Soil natural carbon as a perform of slope and soil depth in a semiarid alpine area of northwest China. CATENA 152, 94-102 (2017).
Hilli, S., Stark, S. & Derome, J. Litter degradation charges depending on litter stands in boreal coniferous forests alongside local weather and soil fertility gradients. appl. Flooring Ecol. 46, 200-208 (2010).
Google Scholar
Parker, TC et al. Exploring the drivers of litter decomposition in a greening Arctic: outcomes of a transplant experiment throughout a treeline. Ecology 99, 2284–2294 (2018).
Strand, LT, Callesen, I., Dalsgaard, L. & de Wit, HA Carbon and nitrogen shares in Norwegian forest soils – The significance of soil formation, local weather and vegetation kind for natural matter accumulation. Allowed to. J. for. Decision 46, 1459–1473 (2016).
Thieme, N., Bollandsås, OM, Gobakken, T. & Næsset, E. Detection of small single bushes within the forest-tundra ecotone utilizing elevation values from airborne laser scanning. Allowed to. J. Distant Sens. 37, 264-274 (2011).
Mienna, IM, Klanderud, Ok., Ørka, HO, Bryn, A. & Bollandsås, OM Land-cover classification of treeline ecotones alongside a 1100 km huge transect utilizing spectral and three-dimensional data from UAV-based aerial imagery. Distant Sens.Ecol. preserved https://doi.org/10.1002/rse2.260 (2022).
Tveito, OE, Bjørdal, I., Skjelvåg, AO & Aune, B. A GIS-based agroecological decision-making system based mostly on grid climatology. meteorol. appl. 12, 57-68 (2005).
Carter, TR Adjustments within the thermal rising season within the Nordic nations over the past century and prospects for the longer term. agricultural. meals science. Fin. 7, 161-179 (1998).
Google Scholar
Abdi, H. Partial least squares regression PLS regression. Encyclopedia Res. Strategies Social Science. 792.295 (2003).
Wold, S., Sjöström, M. & Eriksson, L. PLS regression: A basic software of chemometrics. chemo. intelligence laboratory. system 58, 109-130 (2001).
Liland, KH, Mevik, B.-H., Wehrens, R. & Hiemstra, P. Bundle ‘pls’. (2021).
Mevik, B.-H. & Wehrens, R. Introduction to the pls package deal. Assist glowing ‘Please’ package deal. RStudio Software program 1-23 (2015).
Huang, X. et al. Soil moisture dynamics inside soil profiles and related environmental controls. CATENA 136, 189-196 (2016).
Google Scholar
Entice, J., Hättenschwiler, S., Gattin, I. & Aubert, M. Forest growing older: An surprising issue within the variability of beech leaf litter high quality in European forests with robust implications for soil processes. To the. Ecol. Administer. 302, 338-345 (2013).
Google Scholar
Sorensen, MV et al. drain pelvis? Carbon storage and fluxes in three alpine plant communities. Ecosystems 21, 316–330 (2018).
Google Scholar
Qian, H., Joseph, R. & Zeng, N. Enhanced terrestrial carbon uptake within the northern excessive latitudes within the twenty first century from the Coupled Carbon Cycle Local weather Mannequin Intercomparison Challenge mannequin projections. world change. biol. 16, 641-656 (2010).
Sturm, M. et al. Snow-shrub interactions within the arctic tundra: A speculation with climatic implications. J. Clim. 14, 336-344 (2001).
Grogan, P. & Jonasse, S. Ecosystem CO2 manufacturing in winter in a Swedish subarctic area: The relative significance of local weather and vegetation kind. world Alter Biol. 12, 1479-1495 (2006).
Sistla, SA et al. Lengthy-term warming is restructuring the arctic tundra with out altering internet soil carbon storage. Nature 497, 615–617 (2013).
Wiesmeier, M. et al. Soil natural carbon storage as a key perform of soils – A evaluate of drivers and indicators at completely different scales. Geoderma 333, 149-162 (2019).
Brooks, PD & Williams, MW Snowpack controls nitrogen biking and export in seasonally snow-covered catchments. Hydrological Processes 13, 2177-2190 (1999).
Broll, G. et al. Panorama mosaic in treeline ecotone on Mount Rodjanoaivi, subarctic Finland. fen J. Geogr. 185, 89-105 (2007).
Google Scholar
Turetsky, MR The position of mosses within the carbon and nitrogen cycles. Bryologist 106, 395-409 (2003).
Google Scholar