Unverified paper record
Scaling-up From Leaf to Whole-plant Level for Water Use Efficiency Estimates Based on Stomatal and Mesophyll Behavior
Springer Science and Business Media LLC · 13 Sept 2021 · 10.21203/rs.3.rs-846919/v1
Abstract
Abstract AimsPrediction of whole-plant short-term water use efficiency (WUE s,P ) is essential to indicate plant performance and facilitates comparison across different temporal and spatial scales. Here, the isotope model for WUE s,P was scaled-up from the leaf to the whole-plant level.MethodsFor WUE s,P modelling, leaf gas exchange information, plant respiration and “unproductive” water loss were taken into account. Specifically, in shaping the expression of the WUE s,P , we emphasized the role of both stomatal ( g sw ) and mesophyll conductance ( g m ). ResultsThe verification showed that estimates of g sw from the coupled photosynthesis ( P n,L )- g sw model accounting for the effect of soil water stress slightly outperformed the model neglecting the soil water status effect, and the established coupled P n,L - g m model proved more effective in the estimation of g m than the previously proposed model. Introducing the two diffusion control functions into the whole-plant model, the developed model for WUE s,P effectively captured its response pattern to different CO 2 concentration ( C a ) and soil water content (SWC) conditions. ConclusionsOverall, this study confirmed that accurate estimation of WUE s,P requires an improved predictive accuracy of g sw and g m . These results have important implications for predicting how plants respond to climate change.
Plant phenotyping relevance
植物全体の水利用効率を推定するモデルを開発・検証しており、植物の生理状態を定量化する方法が研究の中心です。
abstractHere, the isotope model for WUE s,P was scaled-up from the leaf to the whole-plant level.
abstractThe verification showed that estimates of g sw from the coupled photosynthesis ( P n,L )- g sw model accounting for the effect of soil water stress slightly outperformed the model neglecting the soil water status effect
abstractthe developed model for WUE s,P effectively captured its response pattern to different CO 2 concentration ( C a ) and soil water content (SWC) conditions.
Code and data availability
The supplied blocks describe gas-exchange, transpiration, and isotope measurements and model equations, but contain no data availability statement, no public dataset or code deposit, and no author-provided URLs beyond the ORCID profile and the article DOI. No paper-specific public asset is identified.
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