The ecohydrological context of drought and classification of plant responses.

Xue Feng, David D Ackerly, Todd E Dawson, Stefano Manzoni, Rob P Skelton, Giulia Vico, Sally E Thompson

Journal: Ecology letters 2019;21(11):1723-1736

PMID: 30152132

Abstract

Many recent studies on drought-induced vegetation mortality have explored how plant functional traits, and classifications of such traits along axes of, for example, isohydry-anisohydry, might contribute to predicting drought survival and recovery. As these studies proliferate, the consistency and predictive value of such classifications need to be carefully examined. Here, we outline the basis for a systematic classification of plant drought responses that accounts for both environmental conditions and functional traits. We use non-dimensional analysis to integrate plant traits and metrics of environmental variation into groups that can be associated with alternative drought stress pathways (hydraulic failure and carbon limitation), and demonstrate that these groupings predict physiological drought outcomes using both synthetic and measured data. In doing so, we aim to untangle some confounding effects of environment and trait variations that undermine current classification schemes, advocate for more careful treatment of the environmental context within which plants experience and respond to drought, and outline a pathway towards a general classification of drought vulnerability.

© 2018 John Wiley & Sons Ltd/CNRS.

Address: Department of Civil, Environmental, and Geo-Engineering, University of Minnesota, Minneapolis, MN, USA.; Department of Integrative Biology, University of California, Berkeley, CA, USA.; Department of Environmental Sciences, Policy, and Management, University of California, Berkeley, CA, USA.; Department of Physical Geography, Stockholm University, Stockholm, Sweden.; Bolin Centre for Climate Research, Stockholm, Sweden.; Department of Crop Production Ecology, Swedish University of Agricultural Sciences (SLU), Uppsala, Sweden.; Department of Civil and Environmental Engineering, University of California, Berkeley, CA, USA.

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MeSH Terms: Carbon, Droughts, Water
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