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August 18, 2011New Phytologist157 citations

Effects of stomatal delays on the economics of leaf gas exchange under intermittent light regimes

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GVGiulia VicoSMStefano ManzoniSPSari Palmroth

Key Points

  • To investigate how stomatal delays influence leaf gas exchange and associated economic balances in understory plants.
  • Developed a leaf gas exchange model to study stomatal movement energetics.
  • Assembled a database of over 60 published datasets on stomatal responses to light fluctuations.
  • Analyzed correlations between stomatal delays, plant functional types, and climate.
  • Stomatal delays were correlated and occurred over a limited range of values.
  • Faster stomatal responses were observed in graminoids and species from dry climates.
  • Observed stomatal opening and closure times optimize carbon gain and minimize costs.

Abstract

• Understory plants are subjected to highly intermittent light availability and their leaf gas exchanges are mediated by delayed responses of stomata and leaf biochemistry to light fluctuations. In this article, the patterns in stomatal delays across biomes and plant functional types were studied and their effects on leaf carbon gains and water losses were quantified. • A database of more than 60 published datasets on stomatal responses to light fluctuations was assembled. To interpret these experimental observations, a leaf gas exchange model was developed and coupled to a novel formulation of stomatal movement energetics. The model was used to test whether stomatal delays optimize light capture for photosynthesis, whilst limiting transpiration and carbon costs for stomatal movement. • The data analysis showed that stomatal opening and closing delays occurred over a limited range of values and were strongly correlated. Plant functional type and climate were the most important drivers of stomatal delays, with faster responses in graminoids and species from dry climates. • Although perfectly tracking stomata would maximize photosynthesis and minimize transpiration at the expense of large opening costs, the observed combinations of opening and closure times appeared to be consistent with a near-optimal balance of carbon gain, water loss and movement costs.

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Cite This Study

Vico et al. (2011) studied this question.

synapsesocial.com/papers/69dd394cac7bdbc6c7101053https://doi.org/10.1111/j.1469-8137.2011.03847.x
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