Light inhibition of leaf respiration in field-grown Eucalyptus saligna in whole-tree chambers under elevated atmospheric CO2 and summer drought

Plant Cell Environ. 2012 May;35(5):966-81. doi: 10.1111/j.1365-3040.2011.02465.x. Epub 2011 Dec 14.

Abstract

We investigated whether the degree of light inhibition of leaf respiration (R) differs among large Eucalyptus saligna grown in whole-tree chambers and exposed to present and future atmospheric [CO(2) ] and summer drought. Associated with month-to-month changes in temperature were concomitant changes in R in the light (R(light) ) and darkness (R(dark) ), with both processes being more temperature dependent in well-watered trees than under drought. Overall rates of R(light) and R(dark) were not significantly affected by [CO(2) ]. By contrast, overall rates of R(dark) (averaged across both [CO(2) ]) were ca. 25% lower under drought than in well-watered trees. During summer, the degree of light inhibition of leaf R was greater in droughted (ca. 80% inhibition) than well-watered trees (ca. 50% inhibition). Notwithstanding these treatment differences, an overall positive relationship was observed between R(light) and R(dark) when data from all months/treatments were combined (R(2) = 0.8). Variations in R(light) were also positively correlated with rates of Rubisco activity and nitrogen concentration. Light inhibition resulted in a marked decrease in the proportion of light-saturated photosynthesis respired (i.e. reduced R/A(sat) ). Collectively, these results highlight the need to account for light inhibition when assessing impacts of global change drivers on the carbon economy of tree canopies.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Australia
  • Carbon / metabolism
  • Carbon Dioxide / metabolism*
  • Cell Respiration
  • Darkness
  • Droughts
  • Eucalyptus / metabolism*
  • Eucalyptus / radiation effects*
  • Light*
  • Nitrogen / analysis
  • Nitrogen / metabolism
  • Photochemical Processes / radiation effects
  • Photosynthesis / radiation effects*
  • Plant Leaves / metabolism
  • Plant Leaves / radiation effects
  • Plant Stomata / metabolism
  • Plant Stomata / radiation effects
  • Plant Transpiration / radiation effects
  • Ribulose-Bisphosphate Carboxylase / analysis
  • Ribulose-Bisphosphate Carboxylase / metabolism
  • Seasons
  • Stress, Physiological*
  • Temperature
  • Trees
  • Water

Substances

  • Water
  • Carbon Dioxide
  • Carbon
  • Ribulose-Bisphosphate Carboxylase
  • Nitrogen