Model-assisted ideotyping reveals trait syndromes to adapt viticulture to a drier climate

Author:

Dayer Silvina1ORCID,Lamarque Laurent J234ORCID,Burlett Régis4ORCID,Bortolami Giovanni5ORCID,Delzon Sylvain4ORCID,Herrera José C6ORCID,Cochard Hervé7ORCID,Gambetta Gregory A1ORCID

Affiliation:

1. EGFV, Bordeaux-Sciences Agro, INRAE, Université de Bordeaux, ISVV , Villenave d’Ornon 33882, France

2. Département des Sciences de l’Environnement, Université du Québec à Trois-Rivières , Trois-Rivières, , Canada G9A 5H7

3. Québec , Trois-Rivières, , Canada G9A 5H7

4. Univ. Bordeaux, INRAE, BIOGECO , Cestas 33610, France

5. SAVE, INRAE, BSA, ISVV , Villenave d’Ornon 33882, France

6. Institute of Viticulture and Pomology, University of Natural Resources and Life Sciences (BOKU) , Tulln 3430, Austria

7. Université Clermont-Auvergne, INRAE, PIAF , Clermont-Ferrand 63000, France

Abstract

Abstract Climate change is challenging the resilience of grapevine (Vitis), one of the most important crops worldwide. Adapting viticulture to a hotter and drier future will require a multifaceted approach including the breeding of more drought-tolerant genotypes. In this study, we focused on plant hydraulics as a multi-trait system that allows the plant to maintain hydraulic integrity and gas exchange rates longer under drought. We quantified a broad range of drought-related traits within and across Vitis species, created in silico libraries of trait combinations, and then identified drought tolerant trait syndromes. By modeling the maintenance of hydraulic integrity of current cultivars and the drought tolerant trait syndromes, we identified elite ideotypes that increased the amount of time they could experience drought without leaf hydraulic failure. Generally, elites exhibited a trait syndrome with lower stomatal conductance, earlier stomatal closure, and a larger hydraulic safety margin. We demonstrated that, when compared with current cultivars, elite ideotypes have the potential to decrease the risk of hydraulic failure across wine regions under future climate scenarios. This study reveals the syndrome of traits that can be leveraged to protect grapevine from experiencing hydraulic failure under drought and increase drought tolerance.

Funder

EU, ERA-NET, ARIMNET2 project

EnVi-RoS

Investments for the Future

Cluster of Excellence COTE

French National Agency for Research

French Ministry of Agriculture, Agrifood, and Forestry (FranceAgriMer

CNIV

PHYSIOPATH project

program Plan National Dépérissement du Vignoble

PHENOBOIS platform (Université de Bordeaux/INRAE

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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