The effect of relative humidity and temperature on the response of stomatal conductance to vapor pressure deficit in tropical trees
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2026
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Abstract
Understanding how leaf gas exchange responds to changes in vapor pressure deficit (VPD) is key to predicting tropical forest resilience to climate change. Stomata regulate leaf water and CO2 diffusion, and respond to changes in temperature and relative humidity, two drivers of VPD. At high temperatures, the cuticular pathway may also become significant and participate in the overall leaf conductance. Here, we measured gas exchange under light and dark conditions to investigate the stomatal and cuticular responses to temperature and relative humidity on detached branches in five tropical tree species. Leaf conductance in the dark, when stomata are essentially closed, was not markedly impacted by temperature and relative humidity, suggesting a minimal response of the cuticular pathway to these conditions. We compared six steady-state conductance models incorporating different effects of photosynthesis and evaporative demand on stomatal control. All models performed well (RMSE < 0.025 mol m-2 s-1), but the best-fitting model (RMSE = 0.017 mol m-2 s-1) used a nonlinear relationship between photosynthesis and stomatal conductance and incorporated relative humidity rather than vapor pressure difference. All models overestimated the steady-state conductance at high relative humidity. Furthermore, leaf conductance immediately increased after a decrease in relative humidity (wrong-way response), but not after an increase in leaf temperature. This suggests that the mechanisms underlying stomatal response to VPD need further investigation. The non-linear coupling between photosynthetic rate and stomatal conductance indicates a sharper physiological response than previously acknowledged.
| Reference Key |
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|---|---|
| Authors | Julien Lamour, Kenneth J Davidson, Jérôme Chave, Martijn Slot, Shawn P Serbin, Alistair Rogers |
| Journal | Tree physiology |
| Year | 2026 |
| DOI |
10.1093/treephys/tpag067
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| URL | |
| Keywords | Keywords not found |
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