Linking plant functional trait plasticity and the large increase in forest water use efficiency
Mastrotheodoros T, Pappas C, Molnar P, Burlando P, Keenan TF, Gentine P, Gough CM, Fatichi S. 2017. Linking plant functional trait plasticity and the large increase in forest water use efficiency. Journal of Geophysical Research: Biogeosciences. 122(9), 2393–2408.
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Author
Mastrotheodoros, Theodoros;
Pappas, Christoforos;
Molnar, Peter;
Burlando, Paolo;
Keenan, Trevor F.;
Gentine, Pierre;
Gough, Christopher M.;
Fatichi, SimoneISTA
Abstract
Elevated atmospheric CO2 concentrations are expected to enhance photosynthesis and reduce stomatal conductance, thus increasing plant water use efficiency. A recent study based on eddy covariance flux observations from Northern Hemisphere forests showed a large increase in inherent water use efficiency (IWUE). Here we used an updated version of the same data set and robust uncertainty quantification to revisit these contemporary IWUE trends. We tested the hypothesis that the observed IWUE increase could be attributed to interannual trends in plant functional traits, potentially triggered by environmental change. We found that IWUE increased by ~1.3% yr−1, which is less than previously reported but still larger than theoretical expectations. Numerical simulations with the Tethys-Chloris ecosystem model using temporally static plant functional traits cannot explain this increase. Simulations with plant functional trait plasticity, i.e., temporal changes in model parameters such as specific leaf area and maximum Rubisco capacity, match the observed trends in IWUE. Our results show that trends in plant functional traits, equal to 1.0% yr−1, can explain the observed IWUE trends. Thus, at decadal or longer time scales, trait plasticity could potentially influence forest water, carbon, and energy fluxes with profound implications for both the monitoring of temporal changes in plant functional traits and their representation in Earth system models.
Publishing Year
Date Published
2017-09-01
Journal Title
Journal of Geophysical Research: Biogeosciences
Publisher
American Geophysical Union
Volume
122
Issue
9
Page
2393-2408
ISSN
eISSN
IST-REx-ID
Cite this
Mastrotheodoros T, Pappas C, Molnar P, et al. Linking plant functional trait plasticity and the large increase in forest water use efficiency. Journal of Geophysical Research: Biogeosciences. 2017;122(9):2393-2408. doi:10.1002/2017jg003890
Mastrotheodoros, T., Pappas, C., Molnar, P., Burlando, P., Keenan, T. F., Gentine, P., … Fatichi, S. (2017). Linking plant functional trait plasticity and the large increase in forest water use efficiency. Journal of Geophysical Research: Biogeosciences. American Geophysical Union. https://doi.org/10.1002/2017jg003890
Mastrotheodoros, Theodoros, Christoforos Pappas, Peter Molnar, Paolo Burlando, Trevor F. Keenan, Pierre Gentine, Christopher M. Gough, and Simone Fatichi. “Linking Plant Functional Trait Plasticity and the Large Increase in Forest Water Use Efficiency.” Journal of Geophysical Research: Biogeosciences. American Geophysical Union, 2017. https://doi.org/10.1002/2017jg003890.
T. Mastrotheodoros et al., “Linking plant functional trait plasticity and the large increase in forest water use efficiency,” Journal of Geophysical Research: Biogeosciences, vol. 122, no. 9. American Geophysical Union, pp. 2393–2408, 2017.
Mastrotheodoros T, Pappas C, Molnar P, Burlando P, Keenan TF, Gentine P, Gough CM, Fatichi S. 2017. Linking plant functional trait plasticity and the large increase in forest water use efficiency. Journal of Geophysical Research: Biogeosciences. 122(9), 2393–2408.
Mastrotheodoros, Theodoros, et al. “Linking Plant Functional Trait Plasticity and the Large Increase in Forest Water Use Efficiency.” Journal of Geophysical Research: Biogeosciences, vol. 122, no. 9, American Geophysical Union, 2017, pp. 2393–408, doi:10.1002/2017jg003890.
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