Disentangling the effects of disturbance, climate and tree age on xylem hydraulic conductivity of Betula pendula

. 2019 May 20 ; 123 (5) : 783-792.

Jazyk angličtina Země Anglie, Velká Británie Médium print

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid30551134

BACKGROUND AND AIMS: The increasing frequency of disturbances in temperate forests is responsible for the greater numbers of trees with mechanically damaged cambial zones. Adjustment of wood anatomical structure to balance between safe and efficient water conductivity is one mechanism trees employ to cope with mechanical damage. The relative role of disturbances, tree age and climate in shaping xylem conduits and affecting xylem hydraulic conductivity remains unknown. METHODS: We performed an experiment with five different mechanical treatments simulating natural disturbances of juvenile Betula pendula trees (stem scarring, tilting, decapitation, root exposure and stem-base burial). After 3 years, trees were cut down, conduit size and density were measured, and specific hydraulic conductivity of each tree ring was calculated. Between-tree and between-year variability in xylem conductivity was decomposed into effects of tree age, climate and disturbances using linear mixed-effects models. KEY RESULTS: Xylem-specific hydraulic conductivity decreased significantly after treatment in decapitated, tilted and scarred trees. In the last treatment, wood anatomical adjustment was restricted to the area next to the callus tissue zone; in contrast, specific hydraulic conductivity declined over the entire stem circumference after tilting or decapitation. The response of trees with buried stems and exposed roots was generally weak. The overall effect of disturbances on inter-annual variability of wood anatomical structure was greater than the contribution of tree age and climate. CONCLUSIONS: The results indicate that disturbances are important drivers of xylem hydraulic conductivity. Expected increases in the frequency and intensity of disturbances may alter the theoretical capacity of forest stands for water conductance with a feedback to climate.

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Aloni R. 2007. Phytohormonal mechanisms that control wood quality formation in young and mature trees. In: Entwistle K, Harris P, Walker J, eds. The Compromised Wood Workshop 2007. University of Canterbury, Christchurch, New Zealand: The Wood Technology Research Centre, 1–22.

Anadon-Rosell A, Dawes MA, Fonti P, Hagedorn F, Rixen C, von Arx G. 2018. Xylem anatomical and growth responses of the dwarf shrub Vaccinium myrtillus to experimental CO2 enrichment and soil warming at treeline. Science of The Total Environment 642: 1172–1183. PubMed

Anderegg WRL, Klein T, Bartlett M, et al. . 2016. Meta-analysis reveals that hydraulic traits explain cross-species patterns of drought-induced tree mortality across the globe. Proceedings of the National Academy of Sciences of the United States of America 113: 5024–5029. PubMed PMC

Arbellay E, Corona C, Stoffel M, Fonti P, Decaulne A. 2012a Defining an adequate sample of earlywood vessels for retrospective injury detection in diffuse-porous species. PLoS ONE 7: e38824. PubMed PMC

Arbellay E, Fonti P, Stoffel M. 2012b Duration and extension of anatomical changes in wood structure after cambial injury. Journal of Experimental Botany 63: 3271–3277. PubMed

Arbellay E, Stoffel M, Decaulne A. 2013. Dating of snow avalanches by means of wound-induced vessel anomalies in sub-arctic Betula pubescens. Boreas 42: 568–574.

Ballesteros-Cánovas JA, Stoffel M, St George S, Hirschboeck K. 2015. A review of flood records from tree rings. Progress in Physical Geography 39: 794–816.

Bates D, Mächler M, Bolker B, Walker S. 2015. Fitting linear mixed-effects models using lme4. Journal of Statistical Software 67: 1–48.

Bivand RS, Pebesma E, Gomez-Rubio V. 2013. Applied spatial data analysis with R. New York: Springer.

Carrer M, von Arx G, Castagneri D, Petit G. 2015. Distilling allometric and environmental information from time series of conduit size: the standardization issue and its relationship to tree hydraulic architecture. Tree Physiology 35: 27–33. PubMed

Castagneri D, Regev L, Boaretto E, Carrer M. 2017. Xylem anatomical traits reveal different strategies of two Mediterranean oaks to cope with drought and warming. Environmental and Experimental Botany 133: 128–138.

Copini P, Decuyper M, Sass-Klaassen U, Gärtner H, Mohren F, den Ouden J. 2015. Effects of experimental stem burial on radial growth and wood anatomy of pedunculate oak. Dendrochronologia 33: 54–60.

Cuny HE, Rathgeber CBK, Frank D, Fonti P, Fournier M. 2014. Kinetics of tracheid development explain conifer tree-ring structure. New Phytologist 203: 1231–1241. PubMed

Diaconu D, Hackenberg J, Stangler DF, Kahle H, Spiecker H. 2017. Simulation study to determine necessary sample sizes for image analysis-based quantitative wood anatomy of vessels of beech (Fagus sylvatica). Dendrochronologia 45: 35–38.

Eilmann B, Zweifel R, Buchmann N, Fonti P, Rigling A. 2009. Drought-induced adaptation of the xylem in Scots pine and pubescent oak. Tree Physiology 29: 1011–1020. PubMed

Fonti P, Treydte K, Osenstetter S, Frank D, Esper J. 2009. Frequency-dependent signals in multi-centennial oak vessel data. Palaeogeography, Palaeoclimatology, Palaeoecology 275: 92–99.

Friedman JM, Vincent KR, Shafroth PB. 2005 Dating floodplain sediments using tree-ring response to burial. Earth Surface Processes and Landforms 30: 1077–1091.

García-González I, Souto-Herrero M, Campelo F. 2016. Ring-porosity and earlywood vessels: a review on extracting environmental information through time. IAWA Journal 37: 295–314.

Gardiner B, Berry P, Moulia B. 2016. Review: Wind impacts on plant growth, mechanics and damage. Plant Science 245: 94–118. PubMed

Gartner BL, Roy J, Huc R. 2003. Effects of tension wood on specific conductivity and vulnerability to embolism of Quercus ilex seedlings grown at two atmospheric CO2 concentrations. Tree Physiology 23: 387–395. PubMed

Gärtner H. 2007. Tree roots — Methodological review and new development in dating and quantifying erosive processes. Geomorphology 86: 243–251.

Gärtner H, Schweingruber FH. 2013. Microscopic preparation techniques for plant stem analysis. Remagen-Oberwinter: Verlag Dr. Kessel.

Gebauer R, Volařík D. 2013. Root hydraulic conductivity and vessel structure modification with increasing soil depth of two oak species: Quercus pubescens and Quercus robur. Trees 27: 523–531.

Gleason SM, Butler DW, Ziemińska K, Waryszak P, Westoby M. 2012. Stem xylem conductivity is key to plant water balance across Australian angiosperm species. Functional Ecology 26: 343–352.

Gleason SM, Westoby M, Jansen S, et al. . 2016. Weak tradeoff between xylem safety and xylem-specific hydraulic efficiency across the world’s woody plant species. New Phytologist 209: 123–136. PubMed

Gombin J, Vaidyanathan R, Agafonik V. 2017. concaveman: A Very Fast 2D Concave Hull Algorithm. R package version 1.0.0. https://CRAN.R-project.org/package=concaveman

Groover A. 2016. Gravitropisms and reaction woods of forest trees - evolution, functions and mechanisms. New Phytologist 211: 790–802. PubMed

Hacke UG, Spicer R, Schreiber SG, Plavcová L. 2017. An ecophysiological and developmental perspective on variation in vessel diameter. Plant, Cell & Environment 40: 831–845. PubMed

Heinrich I, Gärtner H. 2008. Variations in tension wood of two broad‐leaved tree species in response to different mechanical treatments: implications for dendrochronology and mass movement studies. International Journal of Plant Sciences 169: 928–936.

Hitz OM, Gärtner H, Heinrich I, Monbaron M. 2008. Application of ash (Fraxinus excelsior L.) roots to determine erosion rates in mountain torrents. Catena 72: 248–258.

Holeksa J, Jaloviar P, Kucbel S, et al. . 2017. Models of disturbance driven dynamics in the West Carpathian spruce forests. Forest Ecology and Management 388: 79–89. PubMed PMC

Jacobsen AL, Pratt RB, Tobin MF, Hacke UG, Ewers FW. 2012. A global analysis of xylem vessel length in woody plants. American Journal of Botany 99: 1583–1591. PubMed

Matheny AM, Bohrer G, Vogel CS, et al. . 2014. Species-specific transpiration responses to intermediate disturbance in a northern hardwood forest. Journal of Geophysical Research: Biogeosciences 119: 2292–2311.

Matisons R, Elferts D, Brumelis G. 2012. Changes in climatic signals of English oak tree-ring width and cross-section area of earlywood vessels in Latvia during the period 1900–2009. Forest Ecology and Management 279: 34–44.

Matisons R, Jansons J, Katrevičs J, Jansons Ā. 2015. Relation of tree-ring width and earlywood vessel size of alien Quercus rubra L. with climatic factors in Latvia. Silva Fennica 49: id 1391.

Nakagawa S, Schielzeth H. 2013. A general and simple method for obtaining R2 from generalized linear mixed-effects models. Methods in Ecology and Evolution 4: 133–142.

Olson ME, Anfodillo T, Rosell JA, et al. . 2014. Universal hydraulics of the flowering plants: vessel diameter scales with stem length across angiosperm lineages, habits and climates. Ecology Letters 17: 988–997. PubMed

Panayotov M, Gogushev G, Tsavkov E, et al. . 2017. Abiotic disturbances in Bulgarian mountain coniferous forests – An overview. Forest Ecology and Management 388: 13–28.

R Core Team 2017. R: A language and environment for statistical computing. Vienna, Austria: R Foundation for Statistical Computing.

Régent Instruments 2011. WinCell 2011Pro For Wood Cell Analysis. Québec: Régent Instruments Inc.

Rosell JA, Olson ME, Anfodillo T. 2017. Scaling of xylem vessel diameter with plant size: causes, predictions, and outstanding questions. Current Forestry Reports 3: 46–59.

Schelhaas M-J, Nabuurs G-J, Schuck A. 2003. Natural disturbances in the European forests in the 19th and 20th centuries. Global Change Biology 9: 1620–1633.

Schneider L, Gärtner H. 2013. The advantage of using a starch based non-Newtonian fluid to prepare micro sections. Dendrochronologia 31: 175–178.

Scholz A, Klepsch M, Karimi Z, Jansen S. 2013. How to quantify conduits in wood? Frontiers in Plant Science 4: 1–11. PubMed PMC

Schreiber SG, Hacke UG, Hamann A. 2015. Variation of xylem vessel diameters across a climate gradient: insight from a reciprocal transplant experiment with a widespread boreal tree. Functional Ecology 29: 1392–1401.

Seidl R, Thom D, Kautz M, et al. . 2017. Forest disturbances under climate change. Nature Climate Change 7: 395–402. PubMed PMC

Shroder JF. 1980. Dendrogeomorphology: review and new techniques of tree-ring dating. Progress in Physical Geography 4: 161–188.

Šilhán K, Stoffel M. 2015. Impacts of age-dependent tree sensitivity and dating approaches on dendrogeomorphic time series of landslides. Geomorphology 236: 34–43.

Simard S, Giovannelli A, Treydte K, et al. . 2013. Intra-annual dynamics of non-structural carbohydrates in the cambium of mature conifer trees reflects radial growth demands. Tree Physiology 33: 913–923. PubMed

Sperry JS, Meinzer FC, McCulloh KA. 2008. Safety and efficiency conflicts in hydraulic architecture: scaling from tissues to trees. Plant, Cell & Environment 31: 632–645. PubMed

Stoffel M, Corona C. 2014. Dendroecological dating of geomorphic disturbance in trees. Tree-Ring Research 70: 3–20.

Svoboda M, Janda P, Bače R, et al. . 2014. Landscape-level variability in historical disturbance in primary Picea abies mountain forests of the Eastern Carpathians, Romania. Journal of Vegetation Science 25: 386–401.

Thom D, Seidl R. 2016. Natural disturbance impacts on ecosystem services and biodiversity in temperate and boreal forests. Biological Reviews 91: 760–781. PubMed PMC

Tombesi S, Johnson RS, Day KR, DeJong TM. 2010. Relationships between xylem vessel characteristics, calculated axial hydraulic conductance and size-controlling capacity of peach rootstocks. Annals of Botany 105: 327–331. PubMed PMC

Tumajer J, Burda J, Treml V. 2015. Dating of rockfall events using vessel lumen area in Betula pendula. IAWA Journal 36: 286–299.

Tyree MT, Zimmermann MH. 2002. Xylem structure and the ascent of sap. Berlin: Springer.

Wigley TML, Briffa KR, Jones PD. 1984. On the average value of correlated time series, with applications in dendroclimatology and hydrometeorology. Journal of Climate and Applied Meteorology 23: 201–213.

Zhao X. 2015. Effects of cambial age and flow path-length on vessel characteristics in birch. Journal of Forest Research 20: 175–185.

Zielonka T, Holeksa J, Fleischer P, Kapusta P. 2010. A tree-ring reconstruction of wind disturbances in a forest of the Slovakian Tatra Mountains, Western Carpathians. Journal of Vegetation Science 21: 31–42.

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