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A multi-species synthesis of physiological mechanisms in drought-induced tree mortality

  • Henry D. Adams
  • , Melanie J.B. Zeppel
  • , William R.L. Anderegg
  • , Henrik Hartmann
  • , Simon M. Landhäusser
  • , David T. Tissue
  • , Travis E. Huxman
  • , Patrick J. Hudson
  • , Trenton E. Franz
  • , Craig D. Allen
  • , Leander D.L. Anderegg
  • , Greg A. Barron-Gafford
  • , David J. Beerling
  • , David D. Breshears
  • , Timothy J. Brodribb
  • , Harald Bugmann
  • , Richard C. Cobb
  • , Adam D. Collins
  • , L. Turin Dickman
  • , Honglang Duan
  • Brent E. Ewers, Lucía Galiano, David A. Galvez, Núria Garcia-Forner, Monica L. Gaylord, Matthew J. Germino, Arthur Gessler, Uwe G. Hacke, Rodrigo Hakamada, Andy Hector, Michael W. Jenkins, Jeffrey M. Kane, Thomas E. Kolb, Darin J. Law, James D. Lewis, Jean Marc Limousin, David M. Love, Alison K. Macalady, Jordi Martínez-Vilalta, Maurizio Mencuccini, Patrick J. Mitchell, Jordan D. Muss, Michael J. O'Brien, Anthony P. O'Grady, Robert E. Pangle, Elizabeth A. Pinkard, Frida I. Piper, Jennifer A. Plaut, William T. Pockman, Joe Quirk, Keith Reinhardt, Francesco Ripullone, Michael G. Ryan, Anna Sala, Sanna Sevanto, John S. Sperry, Rodrigo Vargas, Michel Vennetier, Danielle A. Way, Chonggang Xu, Enrico A. Yepez, Nate G. McDowell
  • Oklahoma State University
  • Macquarie University
  • University of Sydney
  • University of Utah
  • Max Planck Institute for Biogeochemistry
  • University of Alberta
  • Hawkesbury Institute for the Environment
  • University of California, Irvine
  • University of New Mexico
  • School of Natural Resources
  • U.S. Geological Survey
  • University of Washington
  • University of Arizona
  • University of Sheffield
  • School of Plant Sciences
  • University of Tasmania
  • ETH Zürich
  • University of California, Davis
  • Los Alamos National Laboratory
  • Nanchang Institute of Technology
  • University of Wyoming
  • Swedish University of Agricultural Sciences
  • University of Coimbra
  • Northern Arizona University
  • USDA Forest Service
  • Forest and Rangeland Ecosystem Science Center
  • Snow and Landscape Research WSL
  • University of São Paulo
  • University of Oxford
  • University of California, Santa Cruz
  • Humboldt State University
  • Fordham University
  • Institut de Neurosciences de la Timone, Centre National de la Recherche Scientifique - Aix-Marseille University
  • U.S. Agency for International Development
  • CREAF - Centre de Recerca Ecològica i Aplicacions Forestals
  • Universitat Autònoma de Barcelona (UAB)
  • Technology Department
  • University of Edinburgh
  • CSIRO Agriculture and Food
  • Estación Experimental de Zonas Áridas (CSIC)
  • Centro de Investigación en Ecosistemas de la Patagonia
  • Instituto de Ecología y Biodiversidad
  • Idaho State University College of Science and Engineering
  • Università della Basilicata
  • Colorado State University
  • USDA Forest Service Rocky Mountain Research Station
  • University of Montana Missoula
  • University of Delaware
  • INRAE
  • Duke University
  • Western University
  • Instituto Tecnologico de Sonora
  • Pacific Northwest National Laboratory

Research output: Contribution to journalArticlepeer-review

993 Scopus citations

Abstract

Widespread tree mortality associated with drought has been observed on all forested continents and global change is expected to exacerbate vegetation vulnerability. Forest mortality has implications for future biosphere-atmosphere interactions of carbon, water and energy balance, and is poorly represented in dynamic vegetation models. Reducing uncertainty requires improved mortality projections founded on robust physiological processes. However, the proposed mechanisms of drought-induced mortality, including hydraulic failure and carbon starvation, are unresolved. A growing number of empirical studies have investigated these mechanisms, but data have not been consistently analysed across species and biomes using a standardized physiological framework. Here, we show that xylem hydraulic failure was ubiquitous across multiple tree taxa at drought-induced mortality. All species assessed had 60% or higher loss of xylem hydraulic conductivity, consistent with proposed theoretical and modelled survival thresholds. We found diverse responses in non-structural carbohydrate reserves at mortality, indicating that evidence supporting carbon starvation was not universal. Reduced non-structural carbohydrates were more common for gymnosperms than angiosperms, associated with xylem hydraulic vulnerability, and may have a role in reducing hydraulic function. Our finding that hydraulic failure at drought-induced mortality was persistent across species indicates that substantial improvement in vegetation modelling can be achieved using thresholds in hydraulic function.

Original languageEnglish
Pages (from-to)1285-1291
Number of pages7
JournalNature Ecology and Evolution
Volume1
Issue number9
DOIs
StatePublished - 1 Sep 2017
Externally publishedYes

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