Related Experiment Video
Updated: Apr 6, 2026

Relating Stomatal Conductance to Leaf Functional Traits
Published on: October 12, 2015
Using modern plant trait relationships between observed and theoretical maximum stomatal conductance and vein density
Jennifer C McElwain1,2, Charilaos Yiotis1,2, Tracy Lawson3
1Earth Institute, O'Brien Centre for Science, University College Dublin, Belfield, Ireland.
Abstract:
Understanding the drivers of geological-scale patterns in plant macroevolution is limited by a hesitancy to use measurable traits of fossils to infer palaeoecophysiological function. Here, scaling relationships between morphological traits including maximum theoretical stomatal conductance (gmax ) and leaf vein density (Dv ) and physiological measurements including operational stomatal conductance (gop ), saturated (Asat ) and maximum (Amax ) assimilation rates were investigated for 18 extant taxa in order to improve understanding of angiosperm diversification in the Cretaceous. Our study demonstrated significant relationships between gop , gmax and Dv that together can be used to estimate gas exchange and the photosynthetic capacities of fossils. We showed that acquisition of high gmax in angiosperms conferred a competitive advantage over gymnosperms by increasing the dynamic range (plasticity) of their gas exchange and expanding their ecophysiological niche space. We suggest that species with a high gmax (> 1400 mmol m(-2) s(-1) ) would have been capable of maintaining a high Amax as the atmospheric CO2 declined through the Cretaceous, whereas gymnosperms with a low gmax would experience severe photosynthetic penalty. Expansion of the ecophysiological niche space in angiosperms, afforded by coordinated evolution of high gmax , Dv and increased plasticity in gop , adds further functional insights into the mechanisms driving angiosperm speciation.
More Related Videos
12:11Measurement of Leaf Hydraulic Conductance and Stomatal Conductance and Their Responses to Irradiance and Dehydration Using the Evaporative Flux Method EFM
Published on: December 31, 2012
05:22Identification of the Genes Involved in Stomatal Development via Epidermal Phenotype Scoring
Published on: January 20, 2023
Related Concept Videos
Regulation of Transpiration by Stomata
Xylem and Transpiration-driven Transport of Resources
Adaptations that Reduce Water Loss
Non-vascular Seedless Plants
Seedless Vascular Plants
Short-distance Transport of Resources