Franks & Farquhar (2007) and beyond: The influence of guard and subsidiary cell bio-mechanics on stomatal function

Abstract Stomata are the gatekeepers to leaf gas exchange and as such are essential for CO2 uptake for photosynthesis, water loss for evaporative cooling and ultimately plant growth and productivity. Research has long focused on understanding the mechanisms that govern stomatal aperture adjustments, in particular how changes in turgor pressure in GCs are achieved and how these cause the reversible cell shape distortion that leads to pore opening and closing. Here we discuss the immense impact the paper by Franks and Farquar (2007) has had on this research field, both in the past and more recently, by stimulating new angles of exploration of stomatal mechanics. As new techniques have emerged, the impact of the mechanical advantage of epidermal/subsidiary cells and how this is overcome by GCs has inspired novel studies into the importance of subsidiary to stomatal function, the effect of different cell shapes (dumbbell vs kidney shaped) on stomatal kinetics, the significance of cell geometries and cell complexes, as well as the underlying biochemical cell wall composition responsible for GC deformation. Whilst many questions remain unanswered, we summarize the take-home messages from the key literature on stomatal biomechanics.

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Publication Details

Journal
PLANT PHYSIOLOGY
Published
2026-10-09
DOI
https://doi.org/10.1093/plphys/kiag724
Primary Topic
Plant Water Relations and Carbon Dynamics
Type
article
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article

Franks & Farquhar (2007) and beyond: The influence of guard and subsidiary cell bio-mechanics on stomatal function

Tanja A. Hofmann, Scott A. M. McAdam, Tracy Lawson, Michelle R. Facette
PLANT PHYSIOLOGY
Plant Water Relations and Carbon Dynamics
article

Franks & Farquhar (2007) and beyond: The influence of guard and subsidiary cell bio-mechanics on stomatal function

Tanja A. Hofmann, Scott A. M. McAdam, Tracy Lawson, Michelle R. Facette
article en

Abstract

Abstract Stomata are the gatekeepers to leaf gas exchange and as such are essential for CO2 uptake for photosynthesis, water loss for evaporative cooling and ultimately plant growth and productivity. Research has long focused on understanding the mechanisms that govern stomatal aperture adjustments, in particular how changes in turgor pressure in GCs are achieved and how these cause the reversible cell shape distortion that leads to pore opening and closing. Here we discuss the immense impact the paper by Franks and Farquar (2007) has had on this research field, both in the past and more recently, by stimulating new angles of exploration of stomatal mechanics. As new techniques have emerged, the impact of the mechanical advantage of epidermal/subsidiary cells and how this is overcome by GCs has inspired novel studies into the importance of subsidiary to stomatal function, the effect of different cell shapes (dumbbell vs kidney shaped) on stomatal kinetics, the significance of cell geometries and cell complexes, as well as the underlying biochemical cell wall composition responsible for GC deformation. Whilst many questions remain unanswered, we summarize the take-home messages from the key literature on stomatal biomechanics.

PLANT PHYSIOLOGY
University of Essex (GB), University of Illinois Urbana-Champaign (US), Amherst College (US), Purdue University West Lafayette (US), University of Massachusetts Amherst (US), Carl R. Woese Institute for Genomic Biology (US)
Openalex Percentile: Top 15%
Plant Water Relations and Carbon Dynamics
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Franks & Farquhar (2007) and beyond: The influence of guard and subsidiary cell bio-mechanics on stomatal function — Tanja A. Hofmann, Scott A. M. McAdam, et al. · PLANT PHYSIOLOGY (2026) | TGRS Research Map | TGRS