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A synthesis of the effects of atmospheric carbon dioxide enrichment on plant hydraulics: implications for whole-plant water use efficiency and resistance to drought.

Publication ,  Journal Article
Domec, J-C; Smith, DD; McCulloh, KA
Published in: Plant, cell & environment
June 2017

Here, we summarize studies on the effects of elevated [CO2 ] (CO2e ) on the structure and function of plant hydraulic architecture and explore the implications of those changes using a model. Changes in conduit diameter and hydraulic conductance due to CO2e vary among species. Ring-porous species tend towards an increase in conduit size and consequently conductivity. The effect in diffuse-porous species is much more limited. In conifers, the results are mixed, some species show minor changes in xylem structure, while other studies found increases in tracheid density and diameter. Non-woody plants generally exhibited the reverse pattern with narrower conduits and lower hydraulic conductivity under CO2e . Further, changes in drought-resistance traits suggest that non-woody plants were the most affected by CO2e , which may permit them to better resist drought-induced embolism under future conditions. Due to their complexity, acclimation in hydraulic traits in response to CO2e is difficult to interpret when relying solely on measurements. When we examined how the observed tissues-specific trends might alter plant function, our modelling results suggest that these hydraulic changes would lead to reduced conductance and more frequent drought stress in trees that develop under CO2e with a more pronounced effect in isohydric than in anisohydric species.

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Published In

Plant, cell & environment

DOI

EISSN

1365-3040

ISSN

0140-7791

Publication Date

June 2017

Volume

40

Issue

6

Start / End Page

921 / 937

Related Subject Headings

  • Xylem
  • Water
  • Trees
  • Soil
  • Plant Transpiration
  • Plant Stomata
  • Plant Physiological Phenomena
  • Plant Development
  • Plant Biology & Botany
  • Gene Expression Regulation, Plant
 

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Domec, J.-C., Smith, D. D., & McCulloh, K. A. (2017). A synthesis of the effects of atmospheric carbon dioxide enrichment on plant hydraulics: implications for whole-plant water use efficiency and resistance to drought. Plant, Cell & Environment, 40(6), 921–937. https://doi.org/10.1111/pce.12843
Domec, Jean-Christophe, Duncan D. Smith, and Kate A. McCulloh. “A synthesis of the effects of atmospheric carbon dioxide enrichment on plant hydraulics: implications for whole-plant water use efficiency and resistance to drought.Plant, Cell & Environment 40, no. 6 (June 2017): 921–37. https://doi.org/10.1111/pce.12843.
Domec, Jean-Christophe, et al. “A synthesis of the effects of atmospheric carbon dioxide enrichment on plant hydraulics: implications for whole-plant water use efficiency and resistance to drought.Plant, Cell & Environment, vol. 40, no. 6, June 2017, pp. 921–37. Epmc, doi:10.1111/pce.12843.
Journal cover image

Published In

Plant, cell & environment

DOI

EISSN

1365-3040

ISSN

0140-7791

Publication Date

June 2017

Volume

40

Issue

6

Start / End Page

921 / 937

Related Subject Headings

  • Xylem
  • Water
  • Trees
  • Soil
  • Plant Transpiration
  • Plant Stomata
  • Plant Physiological Phenomena
  • Plant Development
  • Plant Biology & Botany
  • Gene Expression Regulation, Plant