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Pragmatic hydraulic theory predicts stomatal responses to climatic water deficits

  • John S. Sperry
  • , Yujie Wang
  • , Brett T. Wolfe
  • , D. Scott Mackay
  • , William R.L. Anderegg
  • , Nate G. McDowell
  • , William T. Pockman
  • University of Utah
  • Smithsonian Institution
  • Los Alamos National Laboratory
  • University of New Mexico

Research output: Contribution to journalArticlepeer-review

198 Scopus citations

Abstract

Ecosystem models have difficulty predicting plant drought responses, partially from uncertainty in the stomatal response to water deficits in soil and atmosphere. We evaluate a ‘supply–demand’ theory for water-limited stomatal behavior that avoids the typical scaffold of empirical response functions. The premise is that canopy water demand is regulated in proportion to threat to supply posed by xylem cavitation and soil drying. The theory was implemented in a trait-based soil–plant–atmosphere model. The model predicted canopy transpiration (E), canopy diffusive conductance (G), and canopy xylem pressure (Pcanopy) from soil water potential (Psoil) and vapor pressure deficit (D). Modeled responses to D and Psoil were consistent with empirical response functions, but controlling parameters were hydraulic traits rather than coefficients. Maximum hydraulic and diffusive conductances and vulnerability to loss in hydraulic conductance dictated stomatal sensitivity and hence the iso- to anisohydric spectrum of regulation. The model matched wide fluctuations in G and Pcanopy across nine data sets from seasonally dry tropical forest and piñon–juniper woodland with < 26% mean error. Promising initial performance suggests the theory could be useful in improving ecosystem models. Better understanding of the variation in hydraulic properties along the root–stem–leaf continuum will simplify parameterization.

Original languageEnglish
Pages (from-to)577-589
Number of pages13
JournalNew Phytologist
Volume212
Issue number3
DOIs
StatePublished - Nov 1 2016

Keywords

  • climate change drought
  • hydraulic limitation
  • modeling climate change impacts
  • plant drought responses
  • plant water transport
  • stomatal regulation
  • xylem cavitation
  • xylem transport

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