TY - JOUR
T1 - Unravelling the neglected role of ultraviolet radiation on stomata
T2 - A meta-analysis with implications for modelling ecosystem–climate interactions
AU - Alexander, A.
AU - Jansen, Marcel A.K.
AU - Grace, John
AU - Urban, Otmar
N1 - Publisher Copyright:
© 2024 The Authors. Plant, Cell & Environment published by John Wiley & Sons Ltd.
PY - 2024/5
Y1 - 2024/5
N2 - Stomata play a pivotal role in regulating gas exchange between plants and the atmosphere controlling water and carbon cycles. Accordingly, we investigated the impact of ultraviolet-B radiation, a neglected environmental factor varying with ongoing global change, on stomatal morphology and function by a Comprehensive Meta-Analysis. The overall UV effect at the leaf level is to decrease stomatal conductance, stomatal aperture and stomatal size, although stomatal density was increased. The significant decline in stomatal conductance is marked (6% in trees and >10% in grasses and herbs) in short-term experiments, with more modest decreases noted in long-term UV studies. Short-term experiments in growth chambers are not representative of long-term field UV effects on stomatal conductance. Important consequences of altered stomatal function are hypothesized. In the short term, UV-mediated stomatal closure may reduce carbon uptake but also water loss through transpiration, thereby alleviating deleterious effects of drought. However, in the long term, complex changes in stomatal aperture, size, and density may reduce the carbon sequestration capacity of plants and increase vegetation and land surface temperatures, potentially exacerbating negative effects of drought and/or heatwaves. Therefore, the expected future strength of carbon sink capacity in high-UV regions is likely overestimated.
AB - Stomata play a pivotal role in regulating gas exchange between plants and the atmosphere controlling water and carbon cycles. Accordingly, we investigated the impact of ultraviolet-B radiation, a neglected environmental factor varying with ongoing global change, on stomatal morphology and function by a Comprehensive Meta-Analysis. The overall UV effect at the leaf level is to decrease stomatal conductance, stomatal aperture and stomatal size, although stomatal density was increased. The significant decline in stomatal conductance is marked (6% in trees and >10% in grasses and herbs) in short-term experiments, with more modest decreases noted in long-term UV studies. Short-term experiments in growth chambers are not representative of long-term field UV effects on stomatal conductance. Important consequences of altered stomatal function are hypothesized. In the short term, UV-mediated stomatal closure may reduce carbon uptake but also water loss through transpiration, thereby alleviating deleterious effects of drought. However, in the long term, complex changes in stomatal aperture, size, and density may reduce the carbon sequestration capacity of plants and increase vegetation and land surface temperatures, potentially exacerbating negative effects of drought and/or heatwaves. Therefore, the expected future strength of carbon sink capacity in high-UV regions is likely overestimated.
KW - carbon sink
KW - plant stress responses
KW - review
KW - stomatal aperture
KW - stomatal conductance and transpiration
KW - stomatal size and density
KW - UV-B
UR - https://www.scopus.com/pages/publications/85184238064
U2 - 10.1111/pce.14841
DO - 10.1111/pce.14841
M3 - Article
C2 - 38314642
AN - SCOPUS:85184238064
SN - 0140-7791
VL - 47
SP - 1769
EP - 1781
JO - Plant, Cell and Environment
JF - Plant, Cell and Environment
IS - 5
ER -