Morphological and allocational plasticity of fine roots and crowns in European beech (Fagus sylvatica L.): Whole-tree responses to competition and soil water capacity

Alexandra Anthofer , Alina Azekenova , Patrick Wordell-Dietrich , Robin Schäfferling , Gabriela Fontenla-Razzetto , Stefan Julich , Karl-Heinz Feger , Karsten Kalbitz , Goddert von Oheimb

Journal of Forestry Research ›› 2026, Vol. 37 ›› Issue (1) : 156

PDF
Journal of Forestry Research ›› 2026, Vol. 37 ›› Issue (1) :156 DOI: 10.1007/s11676-026-02096-x
Original Paper
research-article
Morphological and allocational plasticity of fine roots and crowns in European beech (Fagus sylvatica L.): Whole-tree responses to competition and soil water capacity
Author information +
History +
PDF

Abstract

Climate change is posing an increasingly serious threat to the health and functionality of forests worldwide, underlining the urgent need to develop a deeper understanding of how trees adapt to changing environmental conditions. While tree individuals use various morphological adaptations to increase their drought tolerance, the way in which these adaptations interact with different competitive conditions is poorly understood. This study investigates the influence of intraspecific competition and available water capacity (AWC) of the soil on the above- and belowground traits of mature European beech (Fagus sylvatica L.) trees in nine stands in Germany. We analysed the interaction between competition and AWC using linear mixed models, employing the Hegyi competition index and high-resolution measurements of crown and fine root traits. Our results showed that trees under intense competition formed smaller, narrower crowns. This effect strengthened with increasing AWC. Under stronger competition or low AWC, trees grew longer and thinner fine roots to improve their water uptake. This allocation to the tree part that acquires the limiting resource, i.e., fine roots for water acquisition at low AWC, suggests high allocation plasticity in beech trees. To improve the survival of beech trees, particularly in drought-prone stands, it could be beneficial to reduce competition intensity by reducing stand density. To better understand and cope with the effects of climate change, we recommend that future research and forest management adopt a whole-tree perspective.

Keywords

Climate change adaptation / Tree competition / Allocational plasticity / Tree crown plasticity / Fine root plasticity

Cite this article

Download citation ▾
Alexandra Anthofer, Alina Azekenova, Patrick Wordell-Dietrich, Robin Schäfferling, Gabriela Fontenla-Razzetto, Stefan Julich, Karl-Heinz Feger, Karsten Kalbitz, Goddert von Oheimb. Morphological and allocational plasticity of fine roots and crowns in European beech (Fagus sylvatica L.): Whole-tree responses to competition and soil water capacity. Journal of Forestry Research, 2026, 37 (1) : 156 DOI:10.1007/s11676-026-02096-x

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Addo-Danso SD, Prescott CE, Smith AR. Methods for estimating root biomass and production in forest and woodland ecosystem carbon studies: a review. For Ecol Manag, 2016, 359: 332-351

[2]

Allen CD, Macalady AK, Chenchouni H, Bachelet D, McDowell N, Vennetier M, Kitzberger T, Rigling A, Breshears DD, Ted Hogg EH, Gonzalez P, Fensham R, Zhang Z, Castro J, Demidova N, Lim JH, Allard G, Running SW, Semerci A, Cobb N. A global overview of drought and heat-induced tree mortality reveals emerging climate change risks for forests. For Ecol Manag, 2010, 259(4): 660-684

[3]

Ammer C, Fichtner A, Fischer A, Gossner MM, Meyer P, Seidl R, Thomas FM, Annighöfer P, Kreyling J, Ohse B, Berger U, Feldmann E, Häberle KH, Heer K, Heinrichs S, Huth F, Krämer-Klement K, Mölder A, Müller J, Mund M, Opgenoorth L, Schall P, Scherer-Lorenzen M, Seidel D, Vogt J, Wagner S. Key ecological research questions for Central European forests. Basic Appl Ecol, 2018, 32: 3-25

[4]

Anderegg WRL, Trugman AT, Badgley G, Anderson CM, Bartuska A, Ciais P, Cullenward D, Field CB, Freeman J, Goetz SJ, Hicke JA, Huntzinger D, Jackson RB, Nickerson J, Pacala S, Randerson JT. Climate-driven risks to the climate mitigation potential of forests. Science, 2020, 368(6497 eaaz7005

[5]

Arend M, Link RM, Zahnd C, Hoch G, Schuldt B, Kahmen A. Lack of hydraulic recovery as a cause of post-drought foliage reduction and canopy decline in European beech. New Phytol, 2022, 2344): 1195-1205

[6]

Asefa M, Worthy SJ, Cao M, Song XY, Lozano YM, Yang J. Above- and below-ground plant traits are not consistent in response to drought and competition treatments. Ann Bot, 2022, 130(7): 939-950

[7]

Bates D, Mächler M, Bolker B, Walker S. Fitting linear mixed-effects models usinglme4. J Stat Soft, 2015, 67(1): 1-48

[8]

Bayer D, Seifert S, Pretzsch H. Structural crown properties of Norway spruce (Picea abies [L.] Karst.) and European beech (Fagus sylvatica [L.]) in mixed versus pure stands revealed by terrestrial laser scanning. Trees, 2013, 27(4): 1035-1047

[9]

Bergmann J, Weigelt A, van der Plas F, Laughlin DC, Kuyper TW, Guerrero-Ramirez N, Valverde-Barrantes OJ, Bruelheide H, Freschet GT, Iversen CM, Kattge J, McCormack ML, Meier IC, Rillig MC, Roumet C, Semchenko M, Sweeney CJ, van Ruijven J, York LM, Mommer L. The fungal collaboration gradient dominates the root economics space in plants. Sci Adv, 2020, 6(27 eaba3756

[10]

Beyer F, Hertel D, Leuschner C. Fine root morphological and functional traits in Fagus sylvatica and Fraxinus excelsior saplings as dependent on species, root order and competition. Plant Soil, 2013, 3731/2): 143-156

[11]

Biging GS, Dobbertin M. A comparison of distance-dependent competition measures for height and basal area growth of individual conifer trees. For Sci, 1992, 38(3): 695-720

[12]

Bloom AJ, Chapin FSIII, Mooney HA. Resource limitation in plants—an economic analogy. Annu Rev Ecol Syst, 1985, 16(1985): 363-392

[13]

Bolte A, Villanueva I. Interspecific competition impacts on the morphology and distribution of fine roots in European beech (Fagus sylvatica L.) and Norway spruce (Picea abies L. Karst.). Eur J Forest Res, 2006, 125(1): 15-26

[14]

Bolte A, Kampf F, Hilbrig L. Space sequestration below ground in old-growth spruce-beech forests—signs for facilitation?. Front Plant Sci, 2013, 4: 322

[15]

Bradford JB, Shriver RK, Robles MD, McCauley LA, Woolley TJ, Andrews CA, Crimmins M, Bell DM. Tree mortality response to drought-density interactions suggests opportunities to enhance drought resistance. J Appl Ecol, 2022, 59(2): 549-559

[16]

Bréda N, Huc R, Granier A, Dreyer E. Temperate forest trees and stands under severe drought: a review of ecophysiological responses, adaptation processes and long-term consequences. Ann for Sci, 2006, 63(6): 625-644

[17]

Brunner I, Herzog C, Dawes MA, Arend M, Sperisen C. How tree roots respond to drought. Front Plant Sci, 2015, 6: 547

[18]

Chen WJ, Liu L, Penuelas J, Zhou GY, Hua LQ, Wu ZR. Strategies of allocating root-shoot biomass in plantations and natural forests at various community stages and moisture levels. J Forestry Res, 2025, 36(1): 126

[19]

Craine JM, Dybzinski R. Mechanisms of plant competition for nutrients, water and light. Funct Ecol, 2013, 27(4): 833-840

[20]

Dieler J, Pretzsch H. Morphological plasticity of European beech (Fagus sylvatica L.) in pure and mixed-species stands. For Ecol Manag, 2013, 295: 97-108

[21]

DWD (2025a) Monthly mean of station observations of air temperature at 2 m above ground in °C for Germany, version v21.3. Hg. v. DWD Climate Data Center, zuletzt geprüft am 25.02.2025.

[22]

DWD (2025b) Monthly station observations of precipitation in mm for Germany, version v21.3. Hg. v. DWD Climate Data Center, zuletzt geprüft am 25.02.2025.

[23]

Eissenstat DM. Costs and benefits of constructing roots of small diameter. J Plant Nutr, 1992, 15(6–7): 763-782

[24]

Eissenstat DM, Wells CE, Yanai RD, Whitbeck JL. Building roots in a changing environment: implications for root longevity. New Phytol, 2000, 147(1): 33-42

[25]

Fernández-de-Uña L, Cañellas I, Gea-Izquierdo G. Stand competition determines how different tree species will cope with a warming climate. PLoS ONE, 2015, 10(3 e0122255

[26]

Fichtner A, Schnabel F, Bruelheide H, Kunz M, Mausolf K, Schuldt A, Härdtle W, von Oheimb G. Neighbourhood diversity mitigates drought impacts on tree growth. J Ecol, 2020, 1083): 865-875

[27]

Forsteinrichtung A. Forstliche Standortsaufnahme. Begriffe, Definitionen, Einteilungen, Kennzeichnungen, Erläuterungen, 20167Eching bei München, IHW-Verlag

[28]

Förster A, Hertel D, Werner R, Leuschner C. Belowground consequences of converting broadleaf to conifer forest: Comparing the fine root systems of European beech and Scots pine. For Ecol Manag, 2021, 496 119457

[29]

Foxx AJ, Fort F. Root and shoot competition lead to contrasting competitive outcomes under water stress: a systematic review and meta-analysis. PLoS ONE, 2019, 14(12 e0220674

[30]

Freschet GT, Bellingham PJ, Lyver PO, Bonner KI, Wardle DA. Plasticity in above- and belowground resource acquisition traits in response to single and multiple environmental factors in three tree species. Ecol Evol, 2013, 34): 1065-1078

[31]

Freschet GT, Pagès L, Iversen CM, Comas LH, Rewald B, Roumet C, Klimešová J, Zadworny M, Poorter H, Postma JA, Adams TS, Bagniewska-Zadworna A, Bengough AG, Blancaflor EB, Brunner I, Cornelissen JHC, Garnier E, Gessler A, Hobbie SE, Meier IC, Mommer L, Picon-Cochard C, Rose L, Ryser P, Scherer-Lorenzen M, Soudzilovskaia NA, Stokes A, Sun T, Valverde-Barrantes OJ, Weemstra M, Weigelt A, Wurzburger N, York LM, Batterman SA, Gomes de Moraes M, Janeček Š, Lambers H, Salmon V, Tharayil N, McCormack ML. A starting guide to root ecology: strengthening ecological concepts and standardising root classification, sampling, processing and trait measurements. New Phytol, 2021, 232(3): 973-1122

[32]

Freschet GT, Roumet C, Comas LH, Weemstra M, Bengough AG, Rewald B, Bardgett RD, De Deyn GB, Johnson D, Klimešová J, Lukac M, McCormack ML, Meier IC, Pagès L, Poorter H, Prieto I, Wurzburger N, Zadworny M, Bagniewska-Zadworna A, Blancaflor EB, Brunner I, Gessler A, Hobbie SE, Iversen CM, Mommer L, Picon-Cochard C, Postma JA, Rose L, Ryser P, Scherer-Lorenzen M, Soudzilovskaia NA, Sun T, Valverde-Barrantes OJ, Weigelt A, York LM, Stokes A. Root traits as drivers of plant and ecosystem functioning: current understanding, pitfalls and future research needs. New Phytol, 2021, 232(3): 1123-1158

[33]

Fruleux A, Bonal D, Bogeat-Triboulot MB. Interactive effects of competition and water availability on above- and below-ground growth and functional traits of European beech at juvenile level. For Ecol Manag, 2016, 382: 21-30

[34]

Gazol A, Camarero JJ. Compound climate events increase tree drought mortality across European forests. Sci Total Environ, 2022, 816 151604

[35]

George JP, Bürkner PC, Sanders TGM, Neumann M, Cammalleri C, Vogt JV, Lang M. Long-term forest monitoring reveals constant mortality rise in European forests. Plant Biol, 2022, 24(7): 1108-1119

[36]

Gleason KE, Bradford JB, Bottero A, D’Amato AW, Fraver S, Palik BJ, Battaglia MA, Iverson L, Kenefic L, Kern CC. Competition amplifies drought stress in forests across broad climatic and compositional gradients. Ecosphere, 2017, 8(7 e01849

[37]

González de Andrés E, Camarero JJ, Blanco JA, Imbert JB, Lo YH, Sangüesa-Barreda G, Castillo FJ. Tree-to-tree competition in mixed European beech–Scots pine forests has different impacts on growth and water-use efficiency depending on site conditions. J Ecol, 2018, 1061): 59-75

[38]

Hegyi F (1974) A simulation model for managing jack-pine stands. Hg. v. J. Fries. Royal College of Forest. Stockholm (Growth models for tree and stand simulation).

[39]

Heidenreich MG, Höwler K, Seidel D. Towards an objective assessment of tree vitality: a case study based on 3D laser scanning. Trees, 2024, 38(4): 927-940

[40]

Hertel D, Strecker T, Müller-Haubold H, Leuschner C. 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, 2013, 101(5): 1183-1200

[41]

Hu MY, Chen HYH, Chang SX, Leuzinger S, Dukes JS, Langley JA, Bader MK, Van Sundert K, Liao HX, Ma ZL. Plant functional traits affect biomass responses to global change: a meta-analysis. J Ecol, 2025, 113(8): 2046-2065

[42]

Inoue S, Shirota T, Mitsuda Y, Ishii H, Gyokusen K. Effects of individual size, local competition and canopy closure on the stem volume growth in a monoclonal Japanese cedar (Cryptomeria japonica D. Don) plantation. Ecol Res, 2008, 23(6): 953-964

[43]

IPCC (2023) Climate change 2021. The physical science basis: Working Group I contribution to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Hg. v. Masson-Delmotte, V., P. Zhai, A. Pirani, S.L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M.I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J.B.R. Matthews, T.K. Maycock, T. Waterfield, O. Yelekçi, R. Yu, B. Zhou. Intergovernmental Panel on Climate Change. Cambridge.

[44]

Jacobs M, Rais A, Pretzsch H. How drought stress becomes visible upon detecting tree shape using terrestrial laser scanning (TLS). For Ecol Manage, 2021, 489 118975

[45]

Juchheim J, Annighöfer P, Ammer C, Calders K, Raumonen P, Seidel D. How management intensity and neighborhood composition affect the structure of beech (Fagus sylvatica L.) trees. Trees, 2017, 31(5): 1723-1735

[46]

Jucker T, Fischer FJ, Chave J, Coomes DA, Caspersen J, Ali A, Loubota Panzou GJ, Feldpausch TR, Falster D, Usoltsev VA, Jackson TD, Adu-Bredu S, Alves LF, Aminpour M, Angoboy Ilondea B, Anten NPR, Antin C, Askari Y, Ayyappan N, Banin LF, Barbier N, Battles JJ, Beeckman H, Bocko YE, Bond-Lamberty B, Bongers F, Bowers S, van Breugel M, Chantrain A, Chaudhary R, Dai JY, Dalponte M, Dimobe K, Domec JC, Doucet JL, Dupuy Rada JM, Duursma RA, Enríquez M, van Ewijk KY, Farfán-Rios W, Fayolle A, Ferretti M, Forni E, Forrester DI, Gilani H, Godlee JL, Haeni M, Hall JS, He JK, Hemp A, Hernández-Stefanoni JL, Higgins SI, Holdaway RJ, Hussain K, Hutley LB, Ichie T, Iida Y, Jiang HS, Joshi PR, Kaboli H, Kazempour Larsary M, Kenzo T, Kloeppel BD, Kohyama TS, Kunwar S, Kuyah S, Kvasnica J, Lin SL, Lines ER, Liu HY, Lorimer C, Loumeto JJ, Malhi Y, Marshall PL, Mattsson E, Matula R, Meave JA, Mensah S, Mi XC, Momo ST, Moncrieff GR, Mora F, Muñoz R, Nissanka SP, Nur Hajar ZS, O’Hara KL, Pearce S, Pelissier R, Peri PL, Ploton P, Poorter L, Pour MJ, Pourbabaei H, Ribeiro SC, Ryan C, Sanaei A, Sanger J, Schlund M, Sellan G, Shenkin A, Sonké B, Sterck FJ, Svátek M, Takagi K, Trugman AT, Vadeboncoeur MA, Valipour A, Vanderwel MC, Vovides AG, Waldner P, Wang WW, Wang LQ, Wirth C, Woods M, Xiang WH, de Aquino Ximenes F, Xu YZ, Yamada T, Zavala MA, Zimmermann NE. The global spectrum of tree crown architecture. Nat Commun, 2025, 16 4876

[47]

Julich S, Azekenova A, Wordell-Dietrich P, Schäfferling R, Koller A, Kniesel B, Petrik P, Fontenla-Razzetto G, Zeh L, Feger KH, von Oheimb G, Kalbitz K. Theoretical and methodological framework for monitoring feedback mechanisms among soil moisture dynamics, soil organic matter and deadwood in forests. J Plant Nutr Soil Sci, 2025, 188(4): 554-569

[48]

Kassambara A, Mundt F (2020) factoextra: Extract and Visualize the Results of Multivariate Data Analyses. Online verfügbar unter https://CRAN.R-project.org/package=factoextra.

[49]

Kirfel K, Leuschner C, Hertel D, Schuldt B. Influence of root diameter and soil depth on the xylem anatomy of fine- to medium-sized roots of mature beech trees in the top- and subsoil. Front Plant Sci, 2017, 8: 1194

[50]

Köcher P, Horna V, Beckmeyer I, Leuschner C. Hydraulic properties and embolism in small-diameter roots of five temperate broad-leaved tree species with contrasting drought tolerance. Ann for Sci, 2012, 69(6): 693-703

[51]

Koller A, Azekenova A, Wordell-Dietrich P, Schäfferling R, Zeh L, Julich S, Kalbitz K, Feger KH, von Oheimb G. Dynamics of fine root biomass and morphology of European beech (Fagus sylvatica L.) forest stands along a soil moisture gradient. Forest Ecosyst, 2025, 14 100379

[52]

Koller A, Azekenova A, Feger KH, Kalbitz K, von Oheimb G. Fine root vitality decline results in reduced branch formation in mature beech stands after drought. For Ecol Manag, 2026, 605 123506

[53]

Kröner K, Larysch E, Schindler Z, Obladen N, Frey J, Stangler DF, Seifert T. Influence of crown morphology and branch architecture on tree radial growth of drought-affected Fagus sylvatica L. For Ecosyst, 2024, 11 100237

[54]

Lak ZA, Sandén H, Mayer M, Godbold DL, Rewald B. Plasticity of root traits under competition for a nutrient-rich patch depends on tree species and possesses a large congruency between intra- and interspecific situations. Forests, 2020, 11(5): 528

[55]

Lang C, Dolynska A, Finkeldey R, Polle A. Are beech (Fagus sylvatica) roots territorial?. For Ecol Manag, 2010, 260(7): 1212-1217

[56]

Lei PF, Scherer-Lorenzen M, Bauhus J. Belowground facilitation and competition in young tree species mixtures. For Ecol Manag, 2012, 265: 191-200

[57]

Leuschner C, Backes K, Hertel D, Schipka F, Schmitt U, Terborg O, Runge M. 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. Forest Ecol Manag, 2001, 149(1–3): 33-46

[58]

Leuschner C, Hertel D, Coners H, Büttner V. Root competition between beech and oak: a hypothesis. Oecologia, 2001, 126(2): 276-284

[59]

Liedtke H, Marcinek J (2002) Physische Geographie Deutschlands. 3. überarbeitete und erweiterte Aufl. Gotha: Klein-perthes (Perthes Geographie-Kolleg).

[60]

Long JA (2019) Interactions: Comprehensive, User-Friendly Toolkit for Probing Interactions. Version 1.2.0.

[61]

Longuetaud F, Piboule A, Wernsdörfer H, Collet C. Crown plasticity reduces inter-tree competition in a mixed broadleaved forest. Eur J for Res, 2013, 132(4): 621-634

[62]

Lüdecke D, Ben-Shachar M, Patil I, Waggoner P, Makowski D. Performance: an R package for assessment, comparison and testing of statistical models. J Open Source Softw, 2021, 6(60): 3139

[63]

Ma SP, Wang XP, Miao WH, Wang XM, Sun HZ, Guo ZW. Relative influence of environmental, stand factors and functional traits on allocation of forest productivity during the restoration of subtropical forests in Central China. For Ecol Manag, 2021, 482 118814

[64]

Mathes T, Seidel D, Annighöfer P (2023) Response to extreme events: do morphological differences affect the ability of beech (Fagus sylvatica L.) to resist drought stress? Forestry 96(3): 355–371. https://doi.org/10.1093/forestry/cpac056

[65]

Matthus E, Zwetsloot M, Delory BM, Hennecke J, Andraczek K, Henning T, Mommer L, Weigelt A, Bergmann J. Revisiting the root economics space—its applications, extensions and nuances advance our understanding of fine-root functioning. Plant Soil, 2025, 514(1): 1-27

[66]

Meier IC, Leuschner C. Belowground drought response of European beech: fine root biomass and carbon partitioning in 14 mature stands across a precipitation gradient. Glob Change Biol, 2008, 14(9): 2081-2095

[67]

Meier IC, Knutzen F, Eder LM, Müller-Haubold H, Goebel MO, Bachmann J, Hertel D, Leuschner C. The deep root system of Fagus sylvatica on sandy soil: structure and variation across a precipitation gradient. Ecosystems, 2018, 21(2): 280-296

[68]

Minasny B, McBratney AB. Limited effect of organic matter on soil available water capacity. Eur J Soil Sci, 2018, 69(1): 39-47

[69]

Ni YY, Jian ZJ, Zeng LX, Liu JF, Lei L, Zhu JH, Xu J, Xiao WF. Climate, soil nutrients, and stand characteristics jointly determine large-scale patterns of biomass growth rates and allocation in Pinus massoniana plantations. For Ecol Manag, 2022, 504 119839

[70]

O’Brien MJ, Engelbrecht BMJ, Joswig J, Pereyra G, Schuldt B, Jansen S, Kattge J, Landhäusser SM, Levick SR, Preisler Y, Väänänen P, Macinnis-Ng C. A synthesis of tree functional traits related to drought-induced mortality in forests across climatic zones. J Appl Ecol, 2017, 54(6): 1669-1686

[71]

Ostonen I, Püttsepp BC, Alberton O, Bakker MR, Lõhmus K, Majdi H, Metcalfe D, Olsthoorn AFM, Pronk A, Vanguelova E, Weih M, Brunner I. Specific root length as an indicator of environmental change. Plant Biosyst Int J Deal Aspects Plant Biol, 2007, 141(3): 426-442

[72]

Pretzsch H. Canopy space filling and tree crown morphology in mixed-species stands compared with monocultures. For Ecol Manag, 2014, 327: 251-264

[73]

R Core Team (2025) R: A Language and Environment for Statistical Computing. Vienna, Austria. Online verfügbar unter https://www.R-project.org/

[74]

Raumonen P, Kaasalainen M, Åkerblom M, Kaasalainen S, Kaartinen H, Vastaranta M, Holopainen M, Disney M, Lewis P. Fast automatic precision tree models from terrestrial laser scanner data. Remote Sens, 2013, 5(2): 491-520

[75]

Raumonen P, Åkerblom M (2017) InverseTampere/TreeQSM: Initial release.

[76]

Rawls WJ, Pachepsky YA, Ritchie JC, Sobecki TM, Bloodworth H. Effect of soil organic carbon on soil water retention. Geoderma, 2003, 116(1–2): 61-76

[77]

Rewald B, Leuschner C. Belowground competition in a broad-leaved temperate mixed forest: pattern analysis and experiments in a four-species stand. Eur J for Res, 2009, 128(4): 387-398

[78]

Schielzeth H. Simple means to improve the interpretability of regression coefficients. Meth Ecol Evol, 2010, 1(2): 103-113

[79]

Schmied G, Pretzsch H, Ambs D, Uhl E, Schmucker J, Fäth J, Biber P, Hoffmann YD, Šeho M, Mellert KH, Hilmers T. Rapid beech decline under recurrent drought stress: Individual neighborhood structure and soil properties matter. For Ecol Manag, 2023, 545 121305

[80]

Schnabel F, Liu XJ, Kunz M, Barry KE, Bongers FJ, Bruelheide H, Fichtner A, Härdtle W, Li S, Pfaff CT, Schmid B, Schwarz JA, Tang ZY, Yang B, Bauhus J, von Oheimb G, Ma KP, Wirth C. Species richness stabilizes productivity via asynchrony and drought-tolerance diversity in a large-scale tree biodiversity experiment. Sci Adv, 2021, 7(51 eabk1643

[81]

Schröter M, Härdtle W, von Oheimb G. Crown plasticity and neighborhood interactions of European beech (Fagus sylvatica L.) in an old-growth forest. Eur J Forest Res, 2012, 1313): 787-798

[82]

Schuldt B, Buras A, Arend M, Vitasse Y, Beierkuhnlein C, Damm A, Gharun M, Grams TEE, Hauck M, Hajek P, Hartmann H, Hiltbrunner E, Hoch G, Holloway-Phillips M, Körner C, Larysch E, Lübbe T, Nelson DB, Rammig A, Rigling A, Rose L, Ruehr NK, Schumann K, Weiser F, Werner C, Wohlgemuth T, Zang CS, Kahmen A. A first assessment of the impact of the extreme 2018 summer drought on Central European forests. Basic Appl Ecol, 2020, 45: 86-103

[83]

Schwinning S, Weiner J. Mechanisms determining the degree of size asymmetry in competition among plants. Oecologia, 1998, 113(4): 447-455

[84]

Song J, Wan SQ, Piao SL, Knapp AK, Classen AT, Vicca S, Ciais P, Hovenden MJ, Leuzinger S, Beier C, Kardol P, Xia JY, Liu Q, Ru JY, Zhou ZX, Luo YQ, Guo DL, Langley JA, Zscheischler J, Dukes JS, Tang JW, Chen JQ, Hofmockel KS, Kueppers LM, Rustad L, Liu LL, Smith MD, Templer PH, Thomas RQ, Norby RJ, Phillips RP, Niu SL, Fatichi S, Wang YP, Shao PS, Han HY, Wang DD, Lei LJ, Wang JL, Li XN, Zhang Q, Li XM, Su FL, Liu B, Yang F, Ma GG, Li GY, Liu YC, Liu YZ, Yang ZL, Zhang KS, Miao Y, Hu MJ, Yan C, Zhang A, Zhong MX, Hui Y, Li Y, Zheng MM. A meta-analysis of 1, 119 manipulative experiments on terrestrial carbon-cycling responses to global change. Nat Ecol Evol, 2019, 3(9): 1309-1320

[85]

Sun Y, Robert CA, Thakur MP. Drought intensity and duration effects on morphological root traits vary across trait type and plant functional groups: a meta-analysis. BMC Ecol Evol, 2024, 24(1): 92

[86]

Terryn L (2024) ITSMe: Individual Tree Structural Metrics. R package version 2.0.0. Online verfügbar unter https://www.github.com/lmterryn/ITSMe

[87]

Weemstra M, Mommer L, Visser EJW, van Ruijven J, Kuyper TW, Mohren GMJ, Sterck FJ. Towards a multidimensional root trait framework: a tree root review. New Phytol, 2016, 211(4): 1159-1169

[88]

Weemstra M, Sterck FJ, Visser EJW, Kuyper TW, Goudzwaard L, Mommer L. Fine-root trait plasticity of beech (Fagus sylvatica) and spruce (Picea abies) forests on two contrasting soils. Plant Soil, 2017, 415(1): 175-188

[89]

Weemstra M, Roumet C, Cruz-Maldonado N, Anthelme F, Stokes A, Freschet GT. Environmental variation drives the decoupling of leaf and root traits within species along an elevation gradient. Ann Bot, 2022, 130(3): 419-430

[90]

Weithmann G, Link RM, Banzragch BE, Würzberg L, Leuschner C, Schuldt B. Soil water availability and branch age explain variability in xylem safety of European beech in Central Europe. Oecologia, 2022, 198(3): 629-644

[91]

Yeste A, Imbert JB, Blanco JA. Fine roots of Scots pine and European beech respond differently to changes in nutrient availability in a mixed forest: results from a 4-year experiment. Forestry, 2025, 98(5): 676-691

[92]

Zwetsloot MJ, Bauerle TL. Repetitive seasonal drought causes substantial species-specific shifts in fine-root longevity and spatio-temporal production patterns in mature temperate forest trees. New Phytol, 2021, 231(3): 974-986

Funding

Bundesministerium für Ernährung und Landwirtschaft(2218 WK53X4)

Bundesministerium für Umwelt, Naturschutz, nukleare Sicherheit und Verbraucherschutz(2218 WK53X4)

Bundesministerium für Forschung, Technologie und Raumfahrt

Freistaat Sachsen

Technische Universität Dresden (1019)

RIGHTS & PERMISSIONS

The Author(s)

PDF

3

Accesses

0

Citation

Detail

Sections
Recommended

/