Literature DB >> 26466749

Drought limitations to leaf-level gas exchange: results from a model linking stomatal optimization and cohesion-tension theory.

Kimberly A Novick1, Chelcy F Miniat2, James M Vose3.   

Abstract

We merge concepts from stomatal optimization theory and cohesion-tension theory to examine the dynamics of three mechanisms that are potentially limiting to leaf-level gas exchange in trees during drought: (1) a 'demand limitation' driven by an assumption of optimal stomatal functioning; (2) 'hydraulic limitation' of water movement from the roots to the leaves; and (3) 'non-stomatal' limitations imposed by declining leaf water status within the leaf. Model results suggest that species-specific 'economics' of stomatal behaviour may play an important role in differentiating species along the continuum of isohydric to anisohydric behaviour; specifically, we show that non-stomatal and demand limitations may reduce stomatal conductance and increase leaf water potential, promoting wide safety margins characteristic of isohydric species. We used model results to develop a diagnostic framework to identify the most likely limiting mechanism to stomatal functioning during drought and showed that many of those features were commonly observed in field observations of tree water use dynamics. Direct comparisons of modelled and measured stomatal conductance further indicated that non-stomatal and demand limitations reproduced observed patterns of tree water use well for an isohydric species but that a hydraulic limitation likely applies in the case of an anisohydric species. Published 2015. This article is a US Government work and is in the public domain in the USA.

Entities:  

Keywords:  anisohydric; capacitance; isohydric; stomatal conductance; transpiration; water use efficiency

Mesh:

Substances:

Year:  2016        PMID: 26466749     DOI: 10.1111/pce.12657

Source DB:  PubMed          Journal:  Plant Cell Environ        ISSN: 0140-7791            Impact factor:   7.228


  7 in total

1.  The impact of rising CO2 and acclimation on the response of US forests to global warming.

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2.  Effect of drought on yield of ten wheat cultivars linked with their flag leaf water status, fatty acid profile and shoot vigor at heading.

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4.  Vapour pressure deficit control in relation to water transport and water productivity in greenhouse tomato production during summer.

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5.  Competition and Drought Alter Optimal Stomatal Strategy in Tree Seedlings.

Authors:  Nicole Zenes; Kelly L Kerr; Anna T Trugman; William R L Anderegg
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Review 7.  Modelling tropical forest responses to drought and El Niño with a stomatal optimization model based on xylem hydraulics.

Authors:  Cleiton B Eller; Lucy Rowland; Rafael S Oliveira; Paulo R L Bittencourt; Fernanda V Barros; Antonio C L da Costa; Patrick Meir; Andrew D Friend; Maurizio Mencuccini; Stephen Sitch; Peter Cox
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2018-10-08       Impact factor: 6.237

  7 in total

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