Implications of the mesophyll conductance to CO2 for photosynthesis and water-use efficiency during long-term water stress and recovery in two contrasting Eucalyptus species

Plant Cell Environ. 2014 Nov;37(11):2470-90. doi: 10.1111/pce.12325. Epub 2014 May 6.

Abstract

Water stress (WS) slows growth and photosynthesis (A(n)), but most knowledge comes from short-time studies that do not account for longer term acclimation processes that are especially relevant in tree species. Using two Eucalyptus species that contrast in drought tolerance, we induced moderate and severe water deficits by withholding water until stomatal conductance (g(sw)) decreased to two pre-defined values for 24 d, WS was maintained at the target g(sw) for 29 d and then plants were re-watered. Additionally, we developed new equations to simulate the effect on mesophyll conductance (g(m)) of accounting for the resistance to refixation of CO(2). The diffusive limitations to CO(2), dominated by the stomata, were the most important constraints to A(n). Full recovery of A(n) was reached after re-watering, characterized by quick recovery of gm and even higher biochemical capacity, in contrast to the slower recovery of g(sw). The acclimation to long-term WS led to decreased mesophyll and biochemical limitations, in contrast to studies in which stress was imposed more rapidly. Finally, we provide evidence that higher gm under WS contributes to higher intrinsic water-use efficiency (iWUE) and reduces the leaf oxidative stress, highlighting the importance of gm as a target for breeding/genetic engineering.

Keywords: Eucalyptus dumosa; Eucalyptus pauciflora; drought; iWUE; online carbon isotope discrimination; oxidative stress; re-watering; refixation CO2; respiration.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Carbon Dioxide / metabolism*
  • Carbon Isotopes
  • Cell Respiration
  • Chlorophyll / metabolism
  • Chloroplasts / metabolism
  • Dehydration
  • Electron Transport
  • Eucalyptus / growth & development
  • Eucalyptus / physiology*
  • Fluorescence
  • Mesophyll Cells / metabolism*
  • Mitochondria / metabolism
  • Photosynthesis*
  • Plant Stomata / physiology
  • Plant Transpiration
  • Quantum Theory
  • Species Specificity
  • Steam
  • Time Factors
  • Water / metabolism*

Substances

  • Carbon Isotopes
  • Steam
  • Water
  • Chlorophyll
  • Carbon Dioxide