HydroShoot: a functional-structural plant model for simulating hydraulic structure, gas and energy exchange dynamics of complex plant canopies under water deficit—application to grapevine (Vitis vinifera)

Author:

Albasha R12,Fournier C1,Pradal C345,Chelle M6,Prieto J A7,Louarn G8,Simonneau T1,Lebon E1

Affiliation:

1. INRA, UMR759 LEPSE, Montpellier, France

2. itk, Clapiers, France

3. CIRAD, UMR AGAP, Montpellier, France

4. AGAP, Univ. Montpellier, CIRAD, INRA, Montpellier SupAgro, Montpellier, France

5. INRIA, Univ. Montpellier, Montpellier, France

6. INRA, UMR1402 Ecosys, Thiverval-Grignon, France

7. INTA EEA Mendoza, San Martín 3853, Luján de Cuyo, Mendoza, Argentina

8. INRA, UR4 P3F, Lusignan, France

Abstract

Abstract This paper presents HydroShoot, a leaf-based functional-structural plant model (FSPM) that simulates gas exchange rates of complex plant canopies under water deficit conditions. HydroShoot is built assuming that simulating both the hydraulic structure of the shoot together with the energy budget of individual leaves is the asset for successfully scaling-up leaf to canopy gas exchange rates. HydroShoot includes three interacting modules: hydraulic, which calculates the distribution of xylem water potential across shoot hydraulic segments; energy, which calculates the complete energy budget of individual leaves; and exchange, which calculates net carbon assimilation and transpiration rates of individual leaves. HydroShoot was evaluated on virtual and real grapevines having strongly contrasted canopies, under well-watered and water deficit conditions. It captured accurately the impact of canopy architecture and soil water status on plant-scale gas exchange rates and leaf-scale temperature and water potential. Both shoot hydraulic structure and leaf energy budget simulations were, as postulated, required to adequately scaling-up leaf to canopy gas exchange rates. Notwithstanding, simulating shoot hydraulic structure was found more necessary to adequately performing this scaling task than simulating leaf energy budget. That is, the intra-canopy variability of leaf water potential was a better predictor of the reduction of whole plant gas exchange rates under water deficit than the intra-canopy variability of leaf temperature. We conclude that simulating the shoot hydraulic structure is a prerequisite if FSPMs are to be used to assess gas exchange rates of complex plant canopies as those of grapevines. Finally, HydroShoot is available through the OpenAlea platform (https://github.com/openalea/hydroshoot) as a set of reusable modules.

Funder

European Community’s Seventh Framework Program

Project INNOVINE

Environment and Agronomy Department

French National Institute for Agricultural Research

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Agronomy and Crop Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Modelling and Simulation

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