Drought response of European beech (Fagus sylvatica L.)—A review

Christoph Leuschner1
1Plant Ecology, University of Goettingen, Untere Karspüle 2, 37073 Goettingen, Germany

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Aertsen, 2014, Long-term growth changes of common beech (Fagus sylvatica L.) are less pronounced on highly productive sites, For. Ecol. Manage., 312, 252, 10.1016/j.foreco.2013.09.034

Allen, 2010, A global overview of drought and heat-induced tree mortality reveals emerging climate change risks for forests, For. Ecol. Manage., 259, 660, 10.1016/j.foreco.2009.09.001

Allen, 2015, On underestimation of global vulnerability to tree mortality and forest die-off from hotter drought in the Anthropocene, Ecosphere, 6, 10.1890/ES15-00203.1

2002

Aranda, 1996, Seasonal water relations of three broadleaved species (Fagus sylvatica L., Quercus petraea (Mattuschka) Liebl. and Quercus pyrenaica Willd.) in a mixed stand in the centre of the Iberian Peninsula, For. Ecol. Manage., 84, 219, 10.1016/0378-1127(96)03729-2

Aranda, 2000, Water relations and gas exchange in Fagus sylvatica L. and Quercus petraea (Mattuschka) Liebl. in a mixed stand at their southern limit of distribution in Europe, Trees, 14, 344, 10.1007/s004680050229

Aranda, 2005, Seasonal changes in apparent hydraulic conductance and their implications for water use of European beech (Fagus sylvatica L.) and sessile oak (Quercus petraea (Matt.) Liebl.) in South Europe, Plant Ecol., 179, 155, 10.1007/s11258-004-7007-1

Aranda, 2015, Variation in photosynthetic performance and hydraulic architecture across European beech (Fagus sylvatica L.) populations supports the case for local adaptation to water stress, Tree Physiol., 35, 34, 10.1093/treephys/tpu101

Aranda, 2017, Intra-population variability in the drought response of a beech (Fagus sylvatica L.) population in the southwest of Europe, Tree Physiol., 37, 938, 10.1093/treephys/tpx058

Aranda, 2018, Ecophysiological and metabolic response patterns to drought under controlled condition in open-pollinated maternal families from a Fagus sylvatica L. population, Env. Exp. Bot., 150, 209, 10.1016/j.envexpbot.2018.03.014

Arend, 2016, Seasonal photosynthetic response of European beech to severe summer drought: limitation, recovery and post-stress stimulation, Agric. For. Meteor., 220, 83, 10.1016/j.agrformet.2016.01.011

Arend, 2016, Ökophysiologie: Reaktionen von Waldbäumen auf Klimaänderungen, 77

Augustaitis, 2015, Sensitivity of European beech trees to unfavorable environmental factors on the edge and outside of their distribution range in northeastern Europe, iForest, 9, 259, 10.3832/ifor1398-008

Babst, 2013, Site- and species-specific responses of forest growth to climate across the European continent, Global Ecol. Biogeogr., 22, 706, 10.1111/geb.12023

Backes, 2000, Leaf water relations of competitive Fagus sylvatica and Quercus petraea trees during 4 years differing in soil drought, Can. J. For. Res., 30, 335, 10.1139/x99-205

Barigah, 2013, Water stress-induced xylem hydraulic failure is a causal factor of tree mortality in beech and poplar, Ann. Bot., 112, 1431, 10.1093/aob/mct204

Barthel, 2011, The diel imprint to leaf metabolism on the δ13C signal of soil respiration under control and drought conditions, New Phytol., 192, 925, 10.1111/j.1469-8137.2011.03848.x

Barthel, 2014, Soil H218O labelling reveals the effect of drought on C18OO fluxes to the atmosphere, J. Exp. Bot., 65, 5783, 10.1093/jxb/eru312

Bartlett, 2012, The determinants of leaf turgor loss point and prediction of drought tolerance of species and biomes: a global meta-analysis, Ecol. Lett., 15, 393, 10.1111/j.1461-0248.2012.01751.x

Beier, 2008, Carbon and nitrogen cycles in European ecosystems respond differently to global warming, Sci. Total Env., 407, 692, 10.1016/j.scitotenv.2008.10.001

Bell, 2004, Ecophysiology of ectomycorrhizal fungi associated with Pinus spp. in low rainfall areas of western Australia, Plant Ecol ., 171, 35, 10.1023/B:VEGE.0000029372.78102.9d

Benecke, 1984, Der Wasserumsatz eines Buchen- und eines Fichtenwaldökosystems im Hochsolling, Schr. Forstl. Fak. Univ. Göttingen u. Nieders. Forstl. Versuchsanst. Bd., 77, 1

Bennett, 2015, Larger trees suffer most during drought in forests worldwide, Nat. Plants, 1, 15139, 10.1038/nplants.2015.139

Bequet, 2011, Leaf area index development in temperate oak and beech forests is driven by stand characteristics and weather conditions, Trees, 25, 935, 10.1007/s00468-011-0568-4

Berg, 2003

Berki, 2009, Determination of the drought tolerance limit of beech forests and forecasting their future distribution in Humgary

Betsch, 2011, Drought effects on water relations in beech: the contribution of exchangeable water reservoirs, Agric. For. Meteorol., 151, 531, 10.1016/j.agrformet.2010.12.008

Biondi, 1993, Climatic signals in tree rings of Fagus sylvatica L. from the central Apennines, Italy, Acta Oecologica, 14, 57

Blessing, 2015, Allocation dynamics of recently fixed carbon in beech saplings in response to increased temperatures and drought, Tree Physiol., 35, 585, 10.1093/treephys/tpv024

Blessing, 2016, Strong coupling of shoot assimilation and soil respiration during drought and recovery periods in beech as indicated by natural abundance δ13C measurements, Frontiers Plant Sci., 7, 1710, 10.3389/fpls.2016.01710

BMEL (Bundesministerium für Ernährung und Landwirtschaft), 2019

Bolte, 2007, The north-eastern distribution range of European beech – a review, Forestry, 80, 413, 10.1093/forestry/cpm028

Bolte, 2010, Climate change impacts on stand structure and competitive interactions in a southern Swedish spruce-beech forest, Eur. J. For. Res., 129, 261, 10.1007/s10342-009-0323-1

Bolte, 2016, Desiccation and mortality dynamics in seedlings of different European beech (Fagus sylvatica L.) populations under extreme drought conditions, Front. Plant Sci., 7, 10.3389/fpls.2016.00751

Bontemps, 2010, Dominant radial and height growth reveal comparable historical variations for common beech in northeastern France, For. Ecol. Manage., 259, 1455, 10.1016/j.foreco.2010.01.019

Borken, 2009, Reappraisal of drying and wetting effects on C and N mineralization and fluxes in soils, Glob. Change Biol. Bioenergy, 15, 808, 10.1111/j.1365-2486.2008.01681.x

Bosela, 2016, The effects of climate warming on the growth of European beechforests depend critically on thinning strategy and site productivity, Agric. For. Meteorol., 222, 21, 10.1016/j.agrformet.2016.03.005

Bosela, 2018, Contrasting effects of environmental change on the radial growth of co-occurring beech and fir trees across Europe, Sci. Tot. Env., 615, 1460, 10.1016/j.scitotenv.2017.09.092

Braun, 1999, Growth of mature beech in relation to ozone and nitrogen deposition: an epidemiological approach, Water Air Soil Pollut., 116, 357, 10.1023/A:1005209831728

Braun, 2010, Does nitrogen deposition increase forest production? The role of phosphorus, Environ. Pollut., 158, 2043, 10.1016/j.envpol.2009.11.030

Braun, 2015, Indikatoren zur Schätzung desTrockenheitsrisikos in Buchen- und Fichtenwäldern, Schweiz. Z. Forstwes., 166, 361, 10.3188/szf.2015.0361

Braun, 2017, Growth trends of beech and Norway spruce in Switzerland: the role of nitrogen deposition, ozone, mineral nutrition and climate, Sci. Total Env., 599–600, 637, 10.1016/j.scitotenv.2017.04.230

Bréda, 2006, Temperate forest trees and stands under severe drought: a review of ecophysiological responses, adaptation processes and long-term consequences, Ann. For. Sci., 63, 625, 10.1051/forest:2006042

Bresson, 2011, To what extent is altitudinal variation of functional traits driven by genetic adaptation in European oak and beech?, Tree Physiol., 31, 1164, 10.1093/treephys/tpr084

Brinkmann, 2019, Species-specific differences in water uptake depth of mature temperate trees vary with water availability in the soil, Plant Biol., 21, 71, 10.1111/plb.12907

Brück-Dyckhoff, 2019, Vitality loss of European beech (Fagus sylvatica L.) and infestation by the European beech splendour beetle (Agrilus viridis L., Buprestidae. Coleoptera), For. Ecol. Manage., 432, 150, 10.1016/j.foreco.2018.09.001

Brunner, 2015, How tree roots respond to drought, Front. Plant Sci., 6, 10.3389/fpls.2015.00547

Buiteveld, 2007, Genetic diversity and differentiation in European beech (Fagus sylvatica L.) stands varying in management history, For. Ecol. Manag., 247, 98, 10.1016/j.foreco.2007.04.018

Buras, 2018, Are Scots pine forest edges particularly prone to drought-induced mortality? Environ, Res. Lett., 13

Burk, 2006

Bussotti, 1998, Occurrence of tannins in leaves of beech trees (Fagus sylvatica) along an ecological gradient, detected by histochemical and ultrastructural changes, New Phytol., 138, 469, 10.1046/j.1469-8137.1998.00121.x

Bussotti, 2005, Leaf morphology and chemistry in Fagus sylvatica L. (beech) trees as affected by site factors and ozone: results from level II permanent monitoring plots in Italy, Tree Physiol., 25, 211, 10.1093/treephys/25.2.211

Bussotti, 2015, Functional traits and adaptive capacity of European forests to climate change, Env. Exp. Bot., 111, 91, 10.1016/j.envexpbot.2014.11.006

Cailleret, 2017, A synthesis of radial growth patterns preceding tree mortality, Glob. Change Biol., 23, 1675, 10.1111/gcb.13535

Carminati, 2020, Soil rather than xylem vulnerability controls stomatal response to drought, Trends Plant Sci., 25, 868, 10.1016/j.tplants.2020.04.003

Carsjens, 2014, Intra-specific variations in expression of stress-related genes in beech progenies are stronger than drought-induced responses, Tree Physiol., 34, 1348, 10.1093/treephys/tpu093

Cavin, 2016, Highest drought sensitivity and lowest resistance to growth suppression are found in the range core of the tree Fagus sylvatica L. not the equatorial range edge, Glob. Change Biol., 23, 362, 10.1111/gcb.13366

Cavin, 2013, Extreme drought alters competitive dominance within and between tree species in a mixed forest stand, Funct. Ecol., 27, 1424, 10.1111/1365-2435.12126

Cermak, 1993, Rapid response of large, drought-stressed beech tree to irrigation, Tree Physiol., 12, 281, 10.1093/treephys/12.3.281

Charru, 2010, Recent changes in forest productivity: an analysis of national forest inventory data for common beech (Fagus sylvatica L.) in north-eastern France, For. Ecol. Manage., 260, 864, 10.1016/j.foreco.2010.06.005

Chaves, 2012, Photosynthesis under water deficits, flooding and salinity, 299

Choat, 2012, Global convergence in the vulnerability of forests to drought, Nature, 491, 752, 10.1038/nature11688

Chuste, 2020, Sacrificing growth and maintaining a dynamic carbohydrate storage are key processes for promoting beech survival under prolonged drought conditions, Trees, 34, 381, 10.1007/s00468-019-01923-5

Ciais, 2005, Europe-wide reduction in primary productivity caused by the heat and drought in 2003, Nature, 437, 529, 10.1038/nature03972

Cochard, 1999, The effects of acclimation to sunlight on the xylem vulnerability to embolism in Fagus sylvatica L, Plant Cell Environ., 22, 101, 10.1046/j.1365-3040.1999.00367.x

Cochard, 2001, Mechanisms of xylem recovery from winter embolism in Fagus sylvatica, Tree Physiol., 1, 27, 10.1093/treephys/21.1.27

Coners, 2005, In situ measurement of fine root water absorption in three temperate tree species – temporal variability and control by soil and atmospheric factors, Basic Appl. Ecol., 6, 395, 10.1016/j.baae.2004.12.003

Cufar, 2008, Tree-ring variation, wood formation and phenology of beech (Fagus sylvatica L.) from a representative site in Slovenia, SE Central Europe, Trees, 22, 749, 10.1007/s00468-008-0235-6

Czajkowski, 2006, Unterschiedliche Reaktionen deutscher und polnischer Herkünfte der Buche (Fagus sylvatica L.) auf Trockenheit, Allg. Forst- u. J.-Ztg., 177, 30

Dannoura, 2019, The impact of prolonged drought on phloem anatomy and phloem transport in young beech trees, Tree Physiol., 39, 201, 10.1093/treephys/tpy070

Dannenmann, 2009, Tree girdling provides insight in the role of labile carbon in the competitive balance of N partitioning between soil microorganisms and adult European beech. Soil Biol, Biochem ., 41, 1622

Davies, 2003, Adaptation of roots to drought, Ecol. Stud., 168, 173, 10.1007/978-3-662-09784-7_7

de Carcer, 2017, Vapor-pressure deficit and extreme climatic variables limit tree growth, Glob. Change Biol., 24, 1108, 10.1111/gcb.13973

de Vries, 2009, The impact of nitrogen deposition on carbon sequestration by European forests and heathlands, For. Ecol. Manag., 258, 1814, 10.1016/j.foreco.2009.02.034

Demmig-Adams, 1992, Photoprotection and other responses of plants to high light stress, Annu. Rev. Plant Physiol. Plant Mol. Biol., 43, 599, 10.1146/annurev.pp.43.060192.003123

di Pietro, 2007, Differential ability of ectomycorrhizas to survive drying, Mycorrhiza, 17, 547, 10.1007/s00572-007-0113-x

Dickson, 1996, Oak growth, development and carbon metabolism in response to water stress, Ann. Sci. For., 53, 181, 10.1051/forest:19960202

Dietrich, 2018, Losing half the conductive area hardly impacts the water status of mature trees, Sci. Rep., 8, 15006, 10.1038/s41598-018-33465-0

Dietrich, 2019, No role for xylem embolism or carbohydrate shortage in temperate trees during the severe 2015 drought, J. Ecol., 107, 334, 10.1111/1365-2745.13051

Dirndorf, 2006, Significant light and temperature dependent monoterpene emissions from European beech (Fagus sylvatica L.) and their potential impact on the European volatile organic compound budget, J. Geophys. Res., 111

Dittmar, 2003, Growth variations of Common Beech (Fagus sylvatica L.) under different climatic and environmental conditions in Europe – a dendroecological study, For. Ecol. Manage., 173, 63, 10.1016/S0378-1127(01)00816-7

Dittmar, 2006, Impact of late frost events on radial growth of common beech (Fagus sylvatica L.) in Southern Germany, Eur. J. For. Res., 125, 249, 10.1007/s10342-005-0098-y

Domec, 2004, Native root xylem embolism and stomatal closure in stands of Douglas-fir and ponderosa pine: mitigation by hydraulic redistribution, Oecologia, 141, 7, 10.1007/s00442-004-1621-4

Dreyer, 1990, Use of pressure-volume curves in water relations analysis in woody shoots: influence of rehydration and comparison of four European oak species, Ann. For Sci., 47, 285, 10.1051/forest:19900401

Dulamsuren, 2017, European beech responds to climate change with growth decline at lower, and growth increase at higher elevations in the center of its distribution range (SW Germany), Trees, 31, 673, 10.1007/s00468-016-1499-x

Eilmann, 2014, Wood structural differences between northern and southern beech provenances growing at a moderate site, Tree Physiol., 34, 882, 10.1093/treephys/tpu069

Eissenstat, 2000, Building roots in a changing environment: implication for root longevity, New Phytol., 147, 33, 10.1046/j.1469-8137.2000.00686.x

Eissenstat, 2013, Global change and root lifespan, 399

Elling, 2003, Neuartige Zuwachsdepressionen bei Buchen, Allg. Forstz./Der Wald, 58, 42

Epron, 1992, Photosynthesis of oak trees (Quercus petraea (Matt.) Liebl.) during drought under field conditions: Diurnal course of net CO2 assimilation and photosynthetic efficiency of photosystem II, Plant Cell Environ., 15, 809, 10.1111/j.1365-3040.1992.tb02148.x

Epron, 2019, Introduction to the invited issue on phloem function and dysfunction, Tree Physiol., 39, 167, 10.1093/treephys/tpz007

Etzold, 2016, Mortalität von Waldbäumen: Ursachen und Trends, 177

Etzold, 2019, One century of forest monitoring data in Switzerland reveals species- and site-specific trends of climate-induced tree mortality, Front. Plant Sci., 10, 10.3389/fpls.2019.00307

Fang, 2006, Climatic limits for the present distribution of beech (Fagus L.) species in the world, J. Biogeogr., 33, 1804, 10.1111/j.1365-2699.2006.01533.x

Felbermeier, 1994, Die klimatische Belastbarkeit der Buche, Forstw. Cbl., 113, 152, 10.1007/BF02936695

Finér, 2007, Variation in fine root biomass of three European tree species: Beech (Fagus sylvatica L.), Norway spruce (Picea abies L. Karst.), and Scots pine (Pinus sylvestris L.), Plant Biosyst., 141, 394, 10.1080/11263500701625897

Flexas, 2004, Diffusive and metabolic limitations to photosynthesis under drought and salinity in C3 plants, Plant Biol., 6, 269, 10.1055/s-2004-820867

Fotelli, 2001, Drought affects the competitive interactions between Fagus sylvatica seedlings and an early successional species, Rubus fruticosus: responses of growth, water status and delta C-13 composition, New Phytol., 151, 427, 10.1046/j.1469-8137.2001.00186.x

Fotelli, 2002, Effects of drought on the competitive interference of an early successional species (Rubus fruticosus) on Fagus sylvatica L. seedlings: N-15 uptake and partitioning, response of amino acids and other N compounds, Plant Biol., 4, 311, 10.1055/s-2002-32334

Fotelli, 2009, Seasonal and interannual ecophysiological responses of beech (Fagus sylvatica) at its south[HYPHEN]eastern distribution limit in Europe. For. Ecol, Manage ., 257, 1157

Frank, 2017, Quantitative genetic differentiation and phenotypic plasticity of European beech in a heterogeneous landscape. Indication for past climate adaptation, Perspec. Plant Ecol. Evol. Syst., 26, 1, 10.1016/j.ppees.2017.02.001

Friedrichs, 2009, Species-specific climate sensitivity of tree growth in Central-West Germany, Trees, 23, 729, 10.1007/s00468-009-0315-2

Fruleux, 2016, Interactive effects of competition and water availability on above- and below-ground growth and functional traits of European beech at juvenile level, For. Ecol. Manage., 382, 21, 10.1016/j.foreco.2016.09.038

Fryer, 1992, The antioxidant effects of thylakoid vitamin E (α-tocopherol), Plant Cell Environ., 15, 381, 10.1111/j.1365-3040.1992.tb00988.x

Fuentes, 2010, Tree mortality in a semi-natural beech forest in SW Sweden, Ecol. Bull., 53, 117

Gallé, 2007, Changes of photosynthetic traits in beech saplings (Fagus sylvatica) under severe drought stress and during recovery, Physiol. Plant., 131, 412, 10.1111/j.1399-3054.2007.00972.x

Garamszegi, 2014, Climate influence on radial growth of Fagus sylvatica growing near the edge of its distribution in Bükk Mts., Hungary, Dendrobiology, 72, 93, 10.12657/denbio.072.008

Garcia-Plazaola, 2000, Effects of drought on photoprotective mechanisms in European beech (Fagus sylvatica L.) seedlings from different provenances, Trees, 14, 485, 10.1007/s004680000068

Garcia-Plazaola, 2001, Seasonal changes in photosynthetic pigments and antioxidants in beech (Fagus sylvatica) in a mediterranean climate: implications for tree decline diagnosis, Aust. J. Plant Physiol., 28, 225

Gérard, 2014, Radial distribution of carbohydrate reserves in the trunk of declining European beech trees (Fagus sylvatica L.), Ann. For. Sci., 71, 675, 10.1007/s13595-012-0240-1

Gessler, 2004, Water shortage affects the water and nitrogen balance in Central European beech forests, Plant Biol., 6, 289, 10.1055/s-2004-820878

Gessler, 2005, Climate and forest management influence nitrogen balance of European beech forests: microbial N transformations and inorganic N net uptake capacity of mycorrhizal roots, Eur. J. For. Res., 124, 95, 10.1007/s10342-005-0055-9

Gessler, 2007, Potential risks for European beech (Fagus sylvatica L.) in a changing climate, Trees, 21, 1, 10.1007/s00468-006-0107-x

Gessler, 2018, Drought induced tree mortality – a tree-ring isotope based conceptual model to assess mechanisms and predispositions, New Phytol., 219, 485, 10.1111/nph.15154

Gessler, 2020, The way back: recovery of trees from drought and its implication for acclimation, New Phytol., 10.1111/nph.16703

Gillner, 2013, Low relative growth rates predict future mortality of common beech (Fagus sylvatica L.), For. Ecol. Manage., 302, 372, 10.1016/j.foreco.2013.03.032

Göttsche, 1972

Granier, 2007, Evidence for soil water control on carbon and water dynamics in European forests during the extremely dry year: 2003, Agric. For. Meteorol., 143, 123, 10.1016/j.agrformet.2006.12.004

Granier, 2008, Ten years of fluxes and stand growth in a young beech forest at Hesse, north-eastern France, Ann. For. Sci., 64, 703

Grimme, 1975

Grossini, 1998, Morpho-anatomical alterations in leaves of Fagus sylvatica L. and Quercus ilex L. in different environmental stress conditions, Chemosphere, 36, 919, 10.1016/S0045-6535(97)10148-5

Gruber, 2004, Die Steuerung des sogenannten “Blattverlustes” der Buche (Fagus sylvatica L.) durch die Witterung - Witterungsbasierte Grund- und Prognosemodelle zum Blattverlust, Allg. Forst- u. J.-Ztg., 175, 83

Haberer, 2008, Effects of drought and canopy ozone exposure on antioxidants in fine roots of mature European beech (Fagus sylvatica), Tree Physiology, 28, 713, 10.1093/treephys/28.5.713

Hacke, 1995, Vulnerability of xylem to embolism in relation to leaf water potential and stomatal conductance in Fagus sylvatica, F. purpurea and Populus balsamifera, J. Exp. Bot., 46, 1177, 10.1093/jxb/46.9.1177

Hacket-Pain, 2017, Increased growth and reduced summer drought limitation at the southern limit of Fagus sylvatica L., despite regionally warmer and drier conditions, Dendrochronologia, 44, 22, 10.1016/j.dendro.2017.02.005

Hacket-Pain, 2015, The influence of masting phenomenon on growth-climate relationships in trees: explaining the influence of previous summers’ climate on ring width, Tree Physiol., 35, 319, 10.1093/treephys/tpv007

Hacket-Pain, 2016, Consistent limitation of growth by high temperature and low precipitation from range core to southern edge of European beech indicates widespread vulnerability to changing climate, Eur. J. For. Res., 135, 897, 10.1007/s10342-016-0982-7

Hacket-Pain, 2018, Climatically controlled reproduction drives interannual growth variability in a temperate tree species, Ecol. Lett., 21, 1833, 10.1111/ele.13158

Hachez, 2012, Short-term control of maize cell and root water permeability through plasma membrane aquaporin isoforms, Plant Cell Environ ., 35, 185, 10.1111/j.1365-3040.2011.02429.x

Hafner, 2017, Hydraulic redistribution under moderate drought in English oak, European beech and Norway spruce determined by deuterium isotope labeling in a split-root experiment, Tree Physiol., 37, 950, 10.1093/treephys/tpx050

Hagedorn, 2016, Recovery of trees from drought depends on belowground sink control. Nat, Plants, 2, 16111

Hajek, 2014, Trade-offs between xylem hydraulic properties, wood anatomy and yield in Populus, Tree Physiol., 34, 744, 10.1093/treephys/tpu048

Hajek, 2016, Intraspecific variation in wood anatomical, hydraulic, and foliar traits in ten European beech provenances differing in growth yield, Front. Plant Sci., 7, 10.3389/fpls.2016.00791

Hansen, 2002, Variation of pigment composition and antioxidative systems along the canopy light gradient in a mixed beech/oak forest: a comparative study on deciduous tree species differing in shade tolerance, Trees, 16, 354, 10.1007/s00468-002-0163-9

Härdtle, 2013, Long-term trends in tree-ring width and isotope signatures (δ13C, δ15N) of Fagus sylvatica L. on soils with contrasting water supply, Ecosystems, 16, 1413, 10.1007/s10021-013-9692-x

Harfouche, 2014, Molecular and physiological responses to abiotic stress in forest trees and their relvance to tree improvement, Tree Physiol., 34, 1181, 10.1093/treephys/tpu012

Harvey, 2019, Tree growth influenced by warming winter climate and summer moisture availability in northern temperate forests, Glob. Change Biol., 26, 2505, 10.1111/gcb.14966

Heinsdorf, 1999, Buchen- und Eichenanbau aus Sicht prognostizierter Klimaveränderungen, AFZ/Der Wald, 11, 567

Heinsdorf, 1997, Entwicklung der Belaubung mittelalter Buchenbestände in Nordostdeutschland von 1987 bis 1996, Forst u. Holz, 53, 733

Hendrick, 1997, The relationship between fine root demography and the soil environment in northern hardwood forests, Ecoscience, 4, 99, 10.1080/11956860.1997.11682383

Herbette, 2010, Insights into xylem vulnerability to cavitation in Fagus sylvatica L.: phenotypic and environmental sources of variability, Tree Physiol., 30, 1448, 10.1093/treephys/tpq079

Herbst, 1995, Stomatal behaviour in a beech canopy: an analysis of Bowen ratio measurements compared to porometer data, Plant Cell Environ., 18, 1010, 10.1111/j.1365-3040.1995.tb00611.x

Hertel, 2013, Fine root biomass and dynamics in beech forests across a precipitation gradient – is optimal resource partitioning theory applicable to water-limited mature trees?, J. Ecol., 101, 1183, 10.1111/1365-2745.12124

Hess, 2018, Anthropogenic nitrogen deposition alters growth responses of European beech (Fagus sylvatica L.) to climate change, Env. Poll., 233, 92, 10.1016/j.envpol.2017.10.024

Hesse, 2019, Repeated summer drought delays sugar export from the lreaf and impairs phloem transport in mature beech, Tree Physiol., 39, 192, 10.1093/treephys/tpy122

Hesse, 2019, Reverse conductivity for water transport and related anatomy in fine roots of six temperate tree species – a potential limitation for hydraulic restribution, J. Plant Hydraulics, 6, e, 10.20870/jph.2019.1-8

Hilf, 1927

Hinckley, 1981, Temperate hardwood forests, Vol. VI, 154

Höllerl, 2004, “…völlig verdorret und zu Grunde gegangen”. Eine Literaturstudie über historische Trockenereignisse von 1723 bis Heute, LWF aktuell, 43, 21

Hommel, 2016, Impact of interspecific competition and drought on the allocation of new assimilates in trees, Plant Biol., 18, 785, 10.1111/plb.12461

Hsiao, 2000, Sensitivity of growth of roots versus leaves to water stress: biophysical analysis and relation to water transport, J. Exp. Biol., 51, 1595

Hülsmann, 2016, Does one model fit all? Patterns of beech mortality in natural forests of three European regions, Ecol. Appl., 26, 2463, 10.1002/eap.1388

Hülsmann, 2018, Natürliche Baummortalität in Mitteleuropa: Mortalitätsraten und –muster im Vergleich, Schweiz. Z. Forstwes., 169, 166, 10.3188/szf.2018.0166

Ibrahim, 1997, Main effects of nitrogen supply and drought stress upon whole-plant carbon allocation in poplar, Can. J. For. Res., 27, 1412, 10.1139/x97-080

Jany, 2003, Respiration activity of ectomycorrhizas from Cenococcum geophilum and Lactarius sp. in relation to soil water potential in five beech forests, Plant Soil, 255, 487, 10.1023/A:1026092714340

Jonard, 2011, Sap flux density and stomatal conductance of European beech and common oak trees in pure and mixed stands during the summer drought of 2003, J. Hydrol., 409, 371, 10.1016/j.jhydrol.2011.08.032

Joslin, 2000, Effects of altered water regimes on forest root systems, New Phytol., 147, 117, 10.1046/j.1469-8137.2000.00692.x

Jump, 2007, Extensive spatial genetic structure revealed by AFLP but not SSR molecular markers in the wind-pollinated tree, Fagus sylvatica, Mol. Ecol., 16, 925, 10.1111/j.1365-294X.2006.03203.x

Jump, 2006, Rapid climate change-related growth decline at the southern range edge of Fagus sylvatica, Glob. Change Biol., 12, 2163, 10.1111/j.1365-2486.2006.01250.x

Jump, 2017, Structural overshoot of tree growth with climate variability and the global spectrum of drought-induced forest dieback, Glob. Change Biol., 23, 3742, 10.1111/gcb.13636

Jung, 2009, Beech decline in Central Europe driven by the interaction between Phytophthora infections and climate extremes, For. Path., 39, 73, 10.1111/j.1439-0329.2008.00566.x

Kapilan, 2018, Regulation of aquaporins in plants under stress, Biol. Res., 51, 4, 10.1186/s40659-018-0152-0

Kaspar, 2017, Beobachtung von Klima und Klimawandel in Mitteleuropa und Deutschland, 17

Keenan, 2014, Net carbon uptake has increased through warming-induced changes in temperate forest phenology, Nat. Clim. Change, 4, 598, 10.1038/nclimate2253

Kerstiens, 1996, Cuticular water permeability and its physiological significance, J. Exp. Bot., 47, 1813, 10.1093/jxb/47.12.1813

Kint, 2012, Radial growth change of temperate tree species in response to altered regional climate and air quality in the period 1901–2008, Clim. Change, 115, 343, 10.1007/s10584-012-0465-x

Kirfel, 2019, Effects of bedrock type and soil chemistry on the fine roots of European beech – a study on the belowground plasticity of trees, For. Ecol. Manage., 444, 256, 10.1016/j.foreco.2019.04.022

Kittl, 2019

Knutzen, 2015, Does reduced precipitation trigger physiological and morphological drought adaptations in European beech (Fagus sylvatica L.)? Comparing provenances across a precipitation gradient, Tree Physiol., 35, 949, 10.1093/treephys/tpv057

Knutzen, 2017, Recent climate warming-related growth decline impairs European beech in the center of its distribution range, Ecosystems, 20, 1494, 10.1007/s10021-017-0128-x

Köcher, 2009, Leaf water status and stem xylem flux in relation to soil drought in five temperate broad-leaved tree species with contrasting water use strategies, Ann. For. Sci., 66, 101, 10.1051/forest/2008076

Köcher, 2012, Hydraulic properties and embolism in small-diameter roots of five temperate broad-leaved tree species with contrasting drought tolerance, Ann. For. Sci., 69, 693, 10.1007/s13595-012-0189-0

Köcher, 2013, Environmental control of daily stem growth patterns in five temperate broad-leaved tree species, Tree Physiol., 32, 1021, 10.1093/treephys/tps049

Kölling, 2007, Klimahüllen von 27 Waldbaumarten, AFZ/Der Wald, 23, 1242

Korn, 2004

Körner, 2019, No need for pipes when the well is dry – a comment on hydraulic failure in trees, Tree Physiol., 39, 695, 10.1093/treephys/tpz030

Kotowska, 2015, Patterns in hydraulic architecture from roots to branches in six tropical tree species from cacao agroforestry and their relation to wood density and stem growth, Front. Plant Sci., 6, 10.3389/fpls.2015.00191

Kramer, 1995

Kreuzwieser, 2010, Global climate change and tree nutrition: influence of water availability, Tree Physiol., 30, 1221, 10.1093/treephys/tpq055

Kutsch, 2009, Ecophysiological characteristics of mature trees and stands – consequences for old-growth forest productivity, 207, 57

Ladefoged, 1939, Untersuchungen über die Periodizität im Ausbruch und Längenwachstum der Wurzeln bei einigen unserer gewöhnlichen Waldbäume, Forstl. Forsogsv. Danm., 16, 1

Lakatos, 2009, Mass mortality of beech (Fagus sylvatica L.) in south-west Hungary, Acta Silv. Lign. Hung., 5, 75, 10.37045/aslh-2009-0006

Lambers, 2019

Latte, 2015, Increased tree-growth synchronization of beech (Fagus sylvatica L.) in response to climate change in northwestern Europe, Dendrochronologia, 33, 69, 10.1016/j.dendro.2015.01.002

Latte, 2016, Growth partitioning within beech trees (Fagus sylvatica L.) varies in response to summer heat waves and related droughts, Trees, 30, 189, 10.1007/s00468-015-1288-y

Laur, 2013, Transpirational demand affects aquaporin expression in poplar roots, J. Exp. Bot ., 64, 2283, 10.1093/jxb/ert096

Leberecht, 2015, Ectomycorrhizal communities on the roots of two beech (Fagus sylvatica) populations from contrasting climates differ in nitrogen acquisition in a common environment, Appl. Env. Microbiol., 81, 5957, 10.1128/AEM.01481-15

Lebourgeois, 2005, Climate-tree-growth relationships of European beech (Fagus sylvatica L.) in the French Permanent Plot Network (RENECOFOR), Trees, 19, 385, 10.1007/s00468-004-0397-9

Lemoine, 2002, Within crown variation in hydraulic architecture in beech (Fagus sylvatica L): evidence for a stomatal control of xylem embolism, Ann. For. Sci., 59, 19, 10.1051/forest:2001002

Lendzion, 2008, Growth of European beech (Fagus sylvatica L) seedlings is limited by elevated atmospheric vapor pressure deficits, For. Ecol. Manag., 256, 648, 10.1016/j.foreco.2008.05.008

Leonardi, 2006, A simple general method to evaluate intra-specific transpiration parameters within and among seedling families, Oecologia, 149, 185, 10.1007/s00442-006-0427-y

Leuschner, 2017

Leuschner, 2003, Fine root biomass in temperate forests in relation to site fertility, water regime and species, Prog. Bot., 64, 405, 10.1007/978-3-642-55819-1_16

Leuschner, 2002, Forest succession and water resources: soil hydrology and ecosystem water turnover in early, mid and late stages of a 300-yr-long chronosequence on sandy soil.) Forest Development. Succession, Environmental Stress and Forest Management. Springer, Berlin, Gremany,., 1

Leuschner, 2001, Drought responses at leaf, stem and fine root levels of competitive Fagus sylvatica L. and Quercus petraea(Matt.) Liebl. trees in dry and wet years, For. Ecol. Manage., 149, 33, 10.1016/S0378-1127(00)00543-0

Leuschner, 2004, Stand fine root biomass and fine root morphology in old-growth beech forests in response to rainfall height and soil acidity, Plant Soil, 258, 43, 10.1023/B:PLSO.0000016508.20173.80

Leuschner, 2006, Variation in leaf area index and stand leaf mass of European beech (Fagus sylvatica L.) across gradients of soil acidity and precipitation, Plant Ecol., 186, 247, 10.1007/s11258-006-9127-2

Leuschner, 2006, On the niche breadth of Fagus sylvatica: soil nutrient status in 50 Central European beech stands on a broad range of bedrock types, Ann. For. Sci., 63, 355, 10.1051/forest:2006016

Leuschner, 2019, The relation between pressure-volume curve traits and stomatal regulation of water potential in five temperate broadleaf tree species, Ann. For. Sci., 76, 10.1007/s13595-019-0838-7

Leuzinger, 2005, Responses of decidous forest trees to severe drought in Central Europe, Tree Physiol., 25, 641, 10.1093/treephys/25.6.641

Li, 2016, Leaf gas exchange preformance and the lethal water potential of five European species during drought, Tree Physiol., 36, 172

Liese, 2018, The mycorrhizal type governs root exudation and N uptake of temperate tree species, Tree Physiol., 38, 83, 10.1093/treephys/tpx131

Liese, 2019, The effect of drought and season on root lifespan in temperate AM and ECM tree species, J. Ecol., 107, 2226, 10.1111/1365-2745.13181

Liu, 2017, Effects of drought on leaf carbon source and growth of European beech are modulated by soil type, Sci. Rep., 7, 42462, 10.1038/srep42462

Loreto, 2001, Respiration in the light measured by 12CO2 emission in 13CO2 atmosphere in maize leaves, Aust. J. Plant Physiol., 28, 1103

Losso, 2018, Insights from in vivo micro-CT analysis: testing the hydraulic vulnerability segmentation in Acer pseudoplatanus and Fagus sylvatica seedlings, New Phytol., 221, 1831, 10.1111/nph.15549

Lübbe, 2016, Acclimation of leaf water status and stem hydraulics to drought and tree neighbourhood: alternative strategies among the saplings of five temperate deciduous tree species, Tree Physiol., 37, 456, 10.1093/treephys/tpw095

Mainiero, 2006, Depth-related fine root dynamics of Fagus sylvatica during exceptional drought, For. Ecol. Manage., 237, 135, 10.1016/j.foreco.2006.09.034

Mainiero, 2010, Fine root dynamics in 60-year-old stands of Fagus sylvatica and Picea abies growin on haplic luvisol soil, Eur. J. For. Res., 129, 1001, 10.1007/s10342-010-0383-2

Markesteijn, 2009, Seedling root morphology and biomass allocation of 62 tropical tree species in relation to drought- and shade-tolerance, J. Ecol., 97, 311, 10.1111/j.1365-2745.2008.01466.x

Martinez-Vilalta, 2009, Hydraulic adjustment of Scots pine across Europe, New Phytol., 184, 353, 10.1111/j.1469-8137.2009.02954.x

Martinez-Vilalta, 2019, Greater focus on water pools may improve our ability to understand and anticipate drought-induced mortality in plants, New Phytol ., 223, 22, 10.1111/nph.15644

Mattson, 1987, The role of drought in outbreaks of plant-eating insects, BioScience, 37, 110, 10.2307/1310365

Maurel, 2015, Aquaporins in plants, Physiol. Rev., 95, 1321, 10.1152/physrev.00008.2015

McCormack, 2014, Impacts of environmental factors on fine root lifespan, Front. Plant Sci., 5, 10.3389/fpls.2014.00205

Meier, 2008, Belowground drought response of European beech: fine root biomass and carbon paritioning in 14 mature stands across a precipitation gradient, Glob. Change Biol., 14, 2081, 10.1111/j.1365-2486.2008.01634.x

Meier, 2008, Leaf size and leaf area index in Fagus sylvatica forests: competing effects of precipitation, temperature, and nitrogen availability, Ecosystems, 11, 655, 10.1007/s10021-008-9135-2

Meier, 2008, Genotypic variation and phenotypic plasticity in the drought response of fine roots of European beech, Tree Physiol., 28, 297, 10.1093/treephys/28.2.297

Meier, 2018, The deep root system of Fagus sylvatica on sandy soil: structure and variation across a precipitation gradient, Ecosystems, 21, 280, 10.1007/s10021-017-0148-6

Meinzer, 1997, Apparent responses of stomata to transpiration and humidity in a hybrid poplar canopy, Plant Cell Environ., 20, 1301, 10.1046/j.1365-3040.1997.d01-18.x

Mencuccini, 1995, Climate influences the leaf area/sapwood area ratio in Scots pine, Tree Physiol., 15, 1, 10.1093/treephys/15.1.1

Metz, 2016, Site-adapted tree species reduce drought susceptibility of mature European beech, Glob. Change Biol., 22, 903, 10.1111/gcb.13113

Metz, 2020, Less is more: effects of competition reduction and facilitation on intra-annual (basal area) growth of mature European beech, Trees, 34, 17, 10.1007/s00468-019-01894-7

Michelot, 2012, Comparing intra-annual wood formation of three European species (Fagus sylvatica, Quercus petraea and Pinus sylvestris) as related to leaf phenology and non-structural carbohydrate dynamics, Tree Physiol., 32, 1033, 10.1093/treephys/tps052

Mizunaga, 2005, Factors affecting the dynamics of the population of Fagus crenata in the Takukuma Mountains, the southern limit of its distribution range, J. For. Res., 10, 481, 10.1007/s10310-005-0165-8

Mohan, 2014, Mycorrhizal fungi meditation of terrestrial ecosystem responses to global change: mini-review, Fungal Ecol., 10, 3, 10.1016/j.funeco.2014.01.005

Mokany, 2006, Critical analysis of root:shoot ratios in terrestrial biomes, Glob. Change Biol., 12, 84, 10.1111/j.1365-2486.2005.001043.x

Mölder, 2014, European beech grows better and is less drought sensitive in mixed than in pure stands: tree neighborhood effects on radial increment, Trees, 28, 777, 10.1007/s00468-014-0991-4

Mueller, 2005, Differential tree mortality in response to severe drought: evidence for long-term vegetation shifts, J. Ecol., 93, 1085, 10.1111/j.1365-2745.2005.01042.x

Muffler, 2020, Lowest drought sensitivity and decreasing growth synchrony towards the dry distribution limit of European beech, Glob. Change Biol.

Müller-Haubold, 2013, Climate responses of aboveground productivity and allocation in Fagus sylvatica: a transect study in mature forests, Ecosystems, 16, 1498, 10.1007/s10021-013-9698-4

Müller-Haubold, 2015, Climatic drivers of mast fruiting in European beech and resulting C and N allocation shifts, Ecosystems, 18, 1083, 10.1007/s10021-015-9885-6

Mund, 2010, The influence of climate and fructification on the inter-annual variability of stem growth and net primary productivity in an old-growth, mixed beech forest, Tree Physiol., 30, 689, 10.1093/treephys/tpq027

Munné-Bosch, 2004, Die and let live: leaf senescence contributes to plant survival under drought stress, Funct. Plant Biol., 31, 203, 10.1071/FP03236

Nabuurs, 2013, First signs of carbon sink saturation in European forest biomass, Nat. Clim. Change, 3, 792, 10.1038/nclimate1853

Nahm, 2007, Seasonal courses of key parameters of nitrogen, carbon and water balance in European beech (Fagus sylvatica L.) grown on four different study sites along a European North-South climate gradient during the 2003 drought, Trees, 21, 79, 10.1007/s00468-006-0098-7

Nationalparkverwaltung Hainich, 2019

Nguyen, 2017, Intraspecific variations in drought response and fitness traits of beech (Fagus sylvatica L.) seedlings from three provenances differing in annual precipitation, Trees, 31, 1215, 10.1007/s00468-017-1539-1

Nickel, 2018, Quantitative losses vs. qualitative stability of ectomycorrhizal community response to 3 years of experimental summer drought in a beech-spruche forest, Glob. Change Biol., 24, e560, 10.1111/gcb.13957

Nielsen, 2003, Phenology and diameter increment in seedlings of European beech (Fagus sylvatica L.) as affected by different soil water contents: variation between and within provenances, For. Ecol. Manage., 174, 233, 10.1016/S0378-1127(02)00042-7

Nihlgard, 1970, Percipitation, its chemical composition and effect on soil water in a beech and spruce forest in South Sweden, Bot. Notiser 5, 122, 333

Niinemets, 2009, Mild versus severe stress and BVOCs: thresholds, priming and consequences, Trends Plant Sci., 15, 145, 10.1016/j.tplants.2009.11.008

Nussbaumer, 2016, Patterns of mast fruiting of common beech, sessile oak and common oak, Norway spruce and Scots pine in Central and Northern Europe, For. Ecol. Manage., 363, 237, 10.1016/j.foreco.2015.12.033

O’Brien, 2014, Drought survival of tropical tree seedlings enhanced by non-structural carbohydrate levels, Nature Clim. Change, 4, 710, 10.1038/nclimate2281

Olmo, 2014, Drought changes the structure and elemental composition of very fine roots in seedlings of ten woody tree species. Implications for a drier climate, Plant Soil, 384, 113, 10.1007/s11104-014-2178-6

Ostonen, 2007, Specific root length as an indicator of environmental change, Plant Biosyst., 141, 426, 10.1080/11263500701626069

Osunubi, 1981, Root growth and water relations of oak and birch seedlings, Oecologia, 51, 343, 10.1007/BF00540904

Paar, 2011, 26

Packham, 2012, Biological flora of the British Isles: Fagus sylvatica, J. Ecol., 100, 1557, 10.1111/j.1365-2745.2012.02017.x

Pallardy, 2008

Peck, 1996, Einfluss von Bestandesparametern auf die Verdunstung von Wäldern, Forstw. Cbl., 115, 1, 10.1007/BF02738580

Peltier, 1998, Water stress tolerance of Fraxinus excelsior L, Bull. Ecol. (Brunoy), 29, 399

Peltzer, 2001

Peltzer, 2002, Differential temperature dependencies of antioxidative enzymes in two contrasting species: Fagus sylvatica and Coleus blumei, Plant Physiol. Biochem., 40, 141, 10.1016/S0981-9428(01)01352-3

Pena, 2010, Girdling affects ectomycorrhizal fungal (EMF) diversity and reveals functional differences in EMF community composition in a beech forest, Appl. Environ. Microbiol., 76, 1831, 10.1128/AEM.01703-09

Peñuelas, 2003, A global change-induced biome shift in the Montseny Mountains (NE Spain), Glob. Change Biol., 9, 131, 10.1046/j.1365-2486.2003.00566.x

Peñuelas, 2007, Migration, invasion and decline: changes in recruitment and forest structure in a warming-linked shift of European beech forest in Catalonia (NE Spain), Ecography, 30, 829, 10.1111/j.2007.0906-7590.05247.x

Peñuelas, 2008, Twentieth century changes of tree-ring δ13C at the southern range-edge of Fagus sylvatica: increasing water-use efficiency does not avoid the growth decline induced by warmung at low altitudes, Glob. Change Biol., 14, 1076, 10.1111/j.1365-2486.2008.01563.x

Peñuelas, 2014, Biogenic volatile emissions from the soil, Plant Cell Environ., 37, 1866, 10.1111/pce.12340

Peterken, 1996, Effects of drought on beech in Lady Park Wood, an unmanaged mixed deciduous woodland, Forestry, 69, 125, 10.1093/forestry/69.2.125

Peters, 1997

Peuke, 2004, Carbon, nitrogen, phosporus, and sulphur concentration and partitioning in beech ecotypes (Fagus sylvatica L.): phosphorus most affected by drought, Trees, 18, 639, 10.1007/s00468-004-0335-x

Peuke, 2011, Impacts of drought on mineral macro- and microelements in prevenances of beech (Fagus sylvatica L.) seedlings, Tree Physiol., 31, 196, 10.1093/treephys/tpr007

Peuke, 2002, Identification of drought-sensitive beech ecotypes by physiological parameters, New Phytol., 154, 373, 10.1046/j.1469-8137.2002.00400.x

Pfeiffer, 2014, Disturbances in European beech water relation during an extreme drought, Ann. For. Sci., 71, 821, 10.1007/s13595-014-0383-3

Pflug, 2018, Resilient leaf physiological response of European beech (Fagus sylvatica L.) to summer drought and drought release, Front. Plant Sci., 9, 10.3389/fpls.2018.00187

Phillips, 1982, Diseases of beech (Fagus sylvatica), 221

Piovesan, 2001, Masting behaviour in beech: linking reproduction and climatic variation, Can. J. Bot., 79, 1039

Piovesan, 2000, Winter North Atlantic oscillation effects on the tree rings of the Italian beech (Fagus sylvatica L.), Int. J. Biometeorol., 44, 121, 10.1007/s004840000055

Piovesan, 2008, Drought-driven growth reduction in old beech (Fagus sylvatica L.) forests of the central Apennines, Italy, Glob. Change Biol., 14, 1, 10.1111/j.1365-2486.2008.01570.x

Pisek, 1938, Kutikuläre Transpiration and Trockenresistenz isolierter Blätter und Sprosse, Planta, 28, 124, 10.1007/BF01909241

Polle, 1997, Defense against photooxidative damage in plants, 623

Polle, 2001, Dissecting the superoxide dismuase-ascorbate-glutathione-pathway in chloroplasts by metabolic modeling. Computer simulations as a step towards flux analysis, Plant Physiol., 126, 445, 10.1104/pp.126.1.445

Polle, 1995, Seasonal changes of antioxidative systems in foliar buds and leaves of field grown beech trees (Fagus sylvatica L.) in a stressful climate, Bot. Acta, 108, 314, 10.1111/j.1438-8677.1995.tb00500.x

Polle, 2019, Engineering drought resistance in forest trees, Frontiers Plant Sci., 9, 10.3389/fpls.2018.01875

Polomski, 1998

Poorter, 2012, Biomass allocation to leaves, stems and roots: meta-analyses of interspecific variation and environmental control, New Phytol., 193, 30, 10.1111/j.1469-8137.2011.03952.x

Power, 1994, Temporal trends in twig growth of Fagus sylvatica L. and their relationships with environmental factors, Forestry, 67, 13, 10.1093/forestry/67.1.13

Pretzsch, 2014, Forest stand dynamics in Central Europe have accelerated since 1870, Nat. Commun., 5, 4967, 10.1038/ncomms5967

Pretzsch, 2020, Growth and mortality of Norway spruce and European beech in monospecific and mixed-species stands under natural episodic and experimentally extended drought. Results of the KROOF throughfall exclusion experiment, Trees, 34, 957, 10.1007/s00468-020-01973-0

Price, 1989, Plants under drought-stress generate activated oxygen, Free Radic. Res. Commun., 8, 61, 10.3109/10715768909087973

Prietzel, 2011, Verändern Douglasien Wasser und Boden?, LWF aktuell, 84, 50

Principe, 2017, Low resistance but high resilience in growth of a mahor deciduous forest tree (Fagus sylvatica L.) in response to late spring frost in southern Germany, Trees, 31, 743, 10.1007/s00468-016-1505-3

Psidova, 2015, Photosynthetic response of beech seedlings of different origin to water deficit, Photosynthetica, 53, 187, 10.1007/s11099-015-0101-x

Rachow, 2019

Raftoyannis, 2002, Physiological response of beech and sessile oak in a natural mixed stand during a dry summer, Ann. Bot., 89, 723, 10.1093/aob/mcf133

Rasheed-Depardieu, 2012, Identification and expression of nine oak aquaporin genes in the primary root axis of two oak species, Quercus petraea and Quercus robur, PlosOne, 7, e51838, 10.1371/journal.pone.0051838

Raspe, 2004, Wenn schon im Sommer tonnenweise Blätter fallen, LWF aktuell (München), 43, 11

Rasztovits, 2014, The incorporation of extreme drought events improves models for beech persistence at its distribution limits, Ann. For. Sci., 71, 201, 10.1007/s13595-013-0346-0

Reader, 1992, A comparative study of plasticity in seedling rooting in drying soil, J. Ecol., 81, 543, 10.2307/2261532

Rennenberg, 2004, Die Buche (Fagus sylvatica L.) – ein Waldbaum ohne Zukunft im südlichen Mitteleuropa?, Allg. Forst- u. J.-ztg., 175, 210

Rennenberg, 2006, Physiological responses of forest trees to heat and drought, Plant Biol., 8, 556, 10.1055/s-2006-924084

Rennenberg, 2009, Nitrogen balance in forest soils: nutritional limitation of plants under climate change stresses, Plant Biol., 11, 4, 10.1111/j.1438-8677.2009.00241.x

Rewald, 2008

Rewald, 2011, Hydrological effects on below ground processes in temperate and Mediterranean forests, 212, 5

Rigling, 2019, Wieviel Trockenheit ertragen unsere Wälder? Lehren aus extremen Trockenjahren, Forum für Wissen – WSL Berichte, 78, 39

Roberts, 1994, Comparative estimates of transpiration of ash and beech forest at a chalk site in southern Britain, J. Hydrol., 162, 229, 10.1016/0022-1694(94)90229-1

Rodriguez-Calcerrada, 2010, Thermal acclimation of leaf dark respiration of beech seedlings experiencing summer drought in high and low light environments, Tree Physiol., 30, 214, 10.1093/treephys/tpp104

Rodriguez-Dominguez, 2020, Declining root water transport drives stomatal closure in olive under moderate water stress, New Phytol., 225, 126, 10.1111/nph.16177

Rohner, 2012, Fifty years of natural succession in Swiss forest reserves: changes in stand structure and mortality rates of oak and beech, J. Veg. Sci., 23, 892, 10.1111/j.1654-1103.2012.01408.x

Roloff, 1985, Untersuchungen zum vorzeitigen Laubfall und zur Diagnose von Trockenschäden in Buchenbeständen, Allg. Forstz., 40, 157

Roman, 2015, The role of isohydric and anisohydric species in determining ecosystem-scale response to severe drought, Oecologia, 179, 641, 10.1007/s00442-015-3380-9

Rose, 2009, Are marginal beech (Fagus sylvatica L.) provenances a source for drought tolerant ecotypes?, Eur. J. For. Res., 128, 335, 10.1007/s10342-009-0268-4

Rosner, 2018, Prediction of hydraulic conductivity loss from relative water loss: new insights into water storage of tree stems and branches, Physiol. Plant., 165, 843, 10.1111/ppl.12790

Rötzer, 2017, Stem and root growth of European beech and Norway spruce under extreme drought, For. Ecol. Manage., 406, 184, 10.1016/j.foreco.2017.09.070

Rozas, 2015, Summer drought and ENSO-related cloudiness distinctly drive Fagus sylvatica growth near the species rear-edge in northern Spain, Agric. For. Meteorol., 201, 153, 10.1016/j.agrformet.2014.11.012

Ruehr, 2009, Drought effects on allocation of recent carbon: from beech leaves to soil CO2 efflux, New Phytol., 184, 950, 10.1111/j.1469-8137.2009.03044.x

Ruehr, 2019, Beyond the extreme: recovery of carbon and water relations in woody plants following heat and drought stress, Tree Physiol., 39, 1285, 10.1093/treephys/tpz032

Rysavy, 1992

Salmon, 2019, Drought impacts on tree phloem: from cell-level responses to ecological significance, Tree Physiol., 39, 173, 10.1093/treephys/tpy153

Schade, 2008, Methanol and other VOC fluxes from a Danish beech forest during springtime, Biogeosci. Discuss., 5, 4315, 10.5194/bgd-5-4315-2008

Schall, 2012, Biomass allocation in roots and shorts is more sensitive to shade and drought in European beech than in Norway spruce seedlings. For. Ecol, Manag ., 266, 246

Scharnweber, 2011, Drought matters – Declining precipitation influences growth of Fagus sylvatica L. and Quercus robur L. in north-eastern Germany, For. Ecol. Manage., 262, 947, 10.1016/j.foreco.2011.05.026

Scharnweber, 2013, Differential radial growth patterns between beech (Fagus sylvatica L.) and oak (Quercus robur L.) on periodically waterlogged soils, Tree Physiol., 33, 425, 10.1093/treephys/tpt020

Scherrer, 2011, Drought-sensitivity ranking of deciduous tree species based on thermal imaging of forest canopies. Agr. For, Meteor ., 151, 1632

Schindler, 1951, Das Buchensterben, bisherige Veröffentlichungen und Auswertungen der staatlichen Unterlagen, Forstarchiv, 22, 109

Schipka, 2002

Schipka, 2005, Regional variation in canopy transpiration of Central European beech forests, Oecologia, 143, 260, 10.1007/s00442-004-1798-6

Schönwiese, 2008, Klima-Trendatlas Deutschland 1901-2000, 4, 1

Schraml, 2002, Ökotypen der Rotbuche (Fagus sylvatica L.) zeigen unterschiedliche Reaktionen auf Trockenstreß, Forstwiss. Cbl., 121, 59, 10.1046/j.1439-0337.2002.00059.x

Schreel, 2019

Schuh, 1997, Emission of volatile organic compounds from sunflower and beech: dependence on temperature and light intensity, J. Atm. Chem., 27, 291, 10.1023/A:1005850710257

Schuldt, 2016, How adaptable is the hydraulic system of European beech in the face climate change related precipitation reduction?, New Phytol., 210, 443, 10.1111/nph.13798

Schuldt, 2020, A first assessment of the impact of the extreme 2018 summer drought on Central European forests, Basic Appl. Ecol., 45, 86, 10.1016/j.baae.2020.04.003

Schulze, 1970, Der CO2-Gaswechsel der Buche (Fagus sylvatica L.) in Abhängigkeit von Klimafaktoren im Freiland, Flora, 159, 177, 10.1016/S0367-2530(17)31026-5

Schumann, 2019, Xylem hydraulic safety and efficiency in relation to leaf and wood traits in three temperate Acer species differing in habitat preferences, Trees, 33, 1475, 10.1007/s00468-019-01874-x

Secchi, 2007, Isolation and functional characterization of three aquaporins from olive (Olea europaea L.), Planta, 225, 381, 10.1007/s00425-006-0365-2

Seidling, 2007, Signals of summer drought in crown condition data from the German Level I network, Eur. J. For. Res., 126, 529, 10.1007/s10342-007-0174-6

Seletkovic, 2009, Climate and relief properties influence crown condition of common beech (Fagus sylvatica L.) on the Medvednica massif, Period. Biol., III, 435

Serra-Maluquer, 2019, Geographically structured growth decline of rear-edge Iberian Fagus sylvatica forests after the 1980s shift toward a warmer climate, Ecosystems, 22, 1325, 10.1007/s10021-019-00339-z

Sevanto, 2014, Phloem transport and drought, J. Exp. Bot., 65, 1751, 10.1093/jxb/ert467

Simms, 2000, Defining tolerance as a norm of reaction. Ecol, Ecol ., 14, 563

Sharkey, 2008, Isoprene emission from plants: why and how, Ann. Bot., 101, 5, 10.1093/aob/mcm240

Sharp, 1988, Growth of the maize primary root at low water potentials. I. Spatial distribution of expansive growth, Plant Physiol., 87, 50, 10.1104/pp.87.1.50

Shi, 2002, The effect of drought on mycorrhizas of beech (Fagus sylvatica L.): changes in community structure, and the content of carbohydrates and nitrogen storage bodies of the fungi, Mycorrhiza, 12, 303, 10.1007/s00572-002-0197-2

Simpraga, 2011, Clear link between drought stress, photosynthesis and biogenic volatile organic compounds in Fagus sylvatica L, Atm. Env., 45, 5254, 10.1016/j.atmosenv.2011.06.075

Siwko, 2007, Does isoprene protect plant membranes from thermal shock? A molecular dynamics study, Biochim. Biophys. Acta Biomembr., 1768, 198, 10.1016/j.bbamem.2006.09.023

Smith, 2008

Sousa-Silva, 2018, Tree diversity mitigates defoliation after a drought-induced tipping point, Glob. Change Biol., 24, 4304, 10.1111/gcb.14326

Sperry, 1997, Xylem cavitation in roots and stems of Douglas-fir and white fir, Tree Physiol., 17, 275, 10.1093/treephys/17.4.275

Spiecker, 1999, Overview of recent growth trends in European forests, Water Air Soil Pollut., 116, 33, 10.1023/A:1005205515952

1996

Spollen, 2000, Abscisic acid accumulation maintains maize primary root elongation at low water potentials by restricting ethylene production, Plant Physiol., 122, 967, 10.1104/pp.122.3.967

Steudle, 1994, Water transport across roots, Plant Soil, 167, 79, 10.1007/BF01587602

Steudle, 1997, Water transport across tree roots.) Trees [HYPHEN] Contributions to Modern Tree Physiology. Backhuys Publ, Leiden.., 239

Stojnic, 2017, Variation in xylem vulnerability to embolism in European beech from geographically marginal populations, Tree Physiol., 38, 173, 10.1093/treephys/tpx128

Stovall, 2019, Tree height explains mortality risk during an intense drought, Nat. Commun., 10, 4385, 10.1038/s41467-019-12380-6

Stovall, 2020, Reply to “Height-related changes in forest composition explain increasing tree mortality with height during an extreme drought”, Nat. Commun., 11, 3401, 10.1038/s41467-020-17214-4

Technical University of Danmark (DTU), 2019

Tegel, 2014, A recent growth increase of European beech (Fagus sylvatica L.) at its Mediterranean disttribution limit contradicts drought stress, Eur. J. For. Res., 133, 61, 10.1007/s10342-013-0737-7

Thiel, 2014, Different reactions of central and marginal provenances of Fagus sylvatica to experimental drought, Eur. J. For. Res., 133, 247, 10.1007/s10342-013-0750-x

Thomas, 2000, Flora, 195, 104, 10.1016/S0367-2530(17)30958-1

Thurm, 2016, Mixture reduces climate sensitivity of Douglas-fir stem growth, For. Ecol. Manage., 376, 205, 10.1016/j.foreco.2016.06.020

Tierney, 2003, Environmental control of fine root dynamics in a northern hardwood forest, Glob. Change Biol., 9, 670, 10.1046/j.1365-2486.2003.00622.x

Tognetti, 1994, Response to light of shade-grown beech seedlings objected to different watering regimes, Tree Physiol., 14, 751, 10.1093/treephys/14.7-8-9.751

Tognetti, 1995, The response of European beech (Fagus sylvatica L.) seedlings from two Italian populations to drought and recovery, Trees, 9, 348, 10.1007/BF00202499

Tomasella, 2018, Acclimation of branch and leaf hydraulics in adult Fagus sylvatica and Picea abies in a forest through-fall exclusion experiment, Tree Physiol., 38, 198, 10.1093/treephys/tpx140

Tomasella, 2019, Close to the edge: effects of repeated severe drought on stem hydraulics and non-structural crbohydrates in European beech, Tree Physiol., 39, 717

Tomiczek, 2013, Zur Waldschutzsituation der Buche, BWF-Praxisinformation, 12, 19

Torreano, 1998, Loblolly pine root growth and distribution under water stress, Soil Sci. Soc. Am. J., 62, 818, 10.2136/sssaj1998.03615995006200030040x

Tyree, 2003, Desiccation tolerance of five tropical seedlings in Panama. Relationship to field assessment of drought performance, Plant Physiol., 132, 1439, 10.1104/pp.102.018937

Uemura, 2004, Linkage between seasonal gas exchange and hydraulic acclimation in the top canopy leaves of Fagus trees in a mesic forest in Japan, Trees, 18, 452, 10.1007/s00468-004-0328-9

Urli, 2013, Xylem embolism threshold for catastrophic hydraulic failure in angiosperm trees, Tree Physiol., 33, 672, 10.1093/treephys/tpt030

van der Maaten, 2012, Climate sensitivity of radial growth in European beech (Fagus sylvatica L.) at different aspects in southwestern Germany, Trees, 26, 777, 10.1007/s00468-011-0645-8

van der Maaten-Theunissen, 2016, Drought sensitivity of beech on a shallow chalk soil in northeastern Germany – a comparative study, For. Ecosyst., 3, 24, 10.1186/s40663-016-0083-6

van der Werf, 2007, The impact of the 2003 summer drought on the intra-annual growth pattern of beech (Fagus sylvatica L.) and oak (Quercus robur L.) on a dry site in the Netherlands, Dendrochronologia, 25, 103, 10.1016/j.dendro.2007.03.004

van Hees, 1997, Growth and morphology of pedunculate oak (Quercus robur L.) and beech (Fagus sylvatica L.) seedlings in relation to shading and drought, Ann. Sci. For., 54, 9, 10.1051/forest:19970102

van Praag, 1996, Temporal and spatial variations of root tip density and ergosterol content of mycorrhizal roots of Picea abies Karst. and Fagus sylvatica L, Soil Biol. Biochem., 26, 833, 10.1016/0038-0717(94)90299-2

Vannoppen, 2019, Tree species diversity impacts average radial growth of beech and oak trees in Belgium, not their long-term growth trend, For. Ecosyst., 6, 10, 10.1186/s40663-019-0169-z

Volkmann, 2016, High-resolution isotope measurements resolve rapid ecohydrological dynamics at the soil-plant interface, New Phytol., 210, 839, 10.1111/nph.13868

Wagenbreth, 1965, Changes in vitality induced in leaves of hardwoods by heat shock, Flora, 156A, 63

Wagenhoff, 1975, Verlauf und Auswirkungen des Buchenrindensterbens im Forstamt Bovenden in den Jahren 1959 bis 1965, Aus dem Walde, 24, 111

Walentowski, 2017, Assessing future suitability of tree species under climate change by multiple methods: a case study in southern Germany, Ann. For. Res., 60, 101, 10.15287/afr.2016.789

Walthert, 2021, From the comfort zone to crown dieback: sequence of physiological stress thresholds in mature European beech trees across progressive drought, Sci. Total Environ., 753, 10.1016/j.scitotenv.2020.141792

Weber, 2013, Drought response and changing mean sensitivity of European beech close to the dry distribution limit, Trees, 27, 171, 10.1007/s00468-012-0786-4

Williams, 2013, Temperature as a potent driver of regional forest drought stress and tree mortality, Nat. Clim. Change, 3, 292, 10.1038/nclimate1693

Withington, 2006, Comparisons of structure and life span in roots and leaves among temperate trees, Ecol. Monogr., 76, 381, 10.1890/0012-9615(2006)076[0381:COSALS]2.0.CO;2

Wortemeann, 2011, Genotypic variability and phenotypic plasticity of cavitation resistance in Fagus sylvatica L. across Europe, Tree Physiol., 31, 1175, 10.1093/treephys/tpr101

Yuan, 2019, Increased atmospheric vapor pressure deficit reduces global vegetation growth, Sci. Adv., 5, eaax1396, 10.1126/sciadv.aax1396

Zang, 2011, Zur Baumarteneignung bei Klimawandel: Ableitung der Trockenstress-Anfälligkeit wichtiger Waldbaumarten aus Jahrringbreiten, Allg. Forst- u. J.Ztg., 182, 98

Zang, 2014, Patterns of drought tolerance in major European temperate forest trees: climatic drivers and levels of variability, Glob. Change Biol., 20, 3767, 10.1111/gcb.12637

Zang, 2014, Effects of drought stress on photosynthesis, rhizosphere respiration, and fine-root characteristics of beech saplings: a rhizotron field study, J. Plant Nutr. Soil Sci., 177, 168, 10.1002/jpln.201300196

Zang, 2014, Fate of recently fixed carbon in European beech (Fagus sylvatica L.) saplings during drought and subsequent recovery, Tree Physiol., 34, 29, 10.1093/treephys/tpt110

Zapater, 2011, Evidence of hydraulic lift in a young beech and oak mixed forest using 18O soil water labelling, Trees, 25, 885, 10.1007/s00468-011-0563-9

Zeleznik, 2016, Fine root dynamics in Slovenian beech forests in relation to soil temperature and water availability, Trees, 30, 375, 10.1007/s00468-015-1218-z

Zierl, 2004, A simulation study to analyse the relations between crown condition and drought in Switzerland, For. Ecol. Manage., 188, 25, 10.1016/j.foreco.2003.07.019

Zimmermann, 2016

Zimmermann, 2015, Climate warming-related growth decline affects Fagus sylvatica, but not other broad-leaved tree species in Central European mixed forests, Ecosystems, 18, 560, 10.1007/s10021-015-9849-x

Zwetsloot, 2018, Fine root responses to repeated seasonal drought in a mixed beech-spruce forest, American Geophys. Union, Fall Meeting 2018, Abstract #GC43H-1628, Dec. 2018