High-throughput digital imaging and detection of morpho-physiological traits in tomato plants under drought

Author:

Kovár Marek1,Živčák Marek1,Filaček Andrej1,Jasenovská Lucia1,Vukelić Igor2,Panković Dejana3,Bárek Viliam4,Yang Xinghong5,Brestič Marián1

Affiliation:

1. Institute of Plant and Environmental Sciences, Slovak University of Agriculture , A. Hlinku 2, 94976 , Nitra , Slovak Republic

2. Faculty of Ecological Agriculture, Educons University , Vojvode Putnika 87, 21208 , Sremska Kamenica , Serbia

3. Julius Kuehn Institute, Institute for Resistance Research and Stress Tolerance , Erwin Baur Strasse 27, 06484 , Quedlinburg , Germany

4. Institute of Landscape Engineering, Slovak University of Agriculture , A. Hlinku 2, 94976 , Nitra , Slovak Republic

5. National Key Laboratory of Wheat Improvement, College of Life Science, Shandong Agricultural University , Taian , 271018 , China

Abstract

Abstract Advances in informatics, robotics, and imaging techniques make it possible to use state-of-the-art digital reconstruction technologies for high-throughput plant phenotyping (HTPP) affected by stress factors, as well as for the ontology of their structural and functional traits. Digital imaging of structural and functional features of the aboveground part of plants is non-destructive and plants can be monitored throughout their entire life cycle. In the experiment with tomato plants (Solanum lycopersicum L.; cv. Gruzanski zlatni) grown in controlled environmental conditions and affected by gradual soil dehydration, we evaluated phenotypic traits and phenotypic plasticity by the PlantScreenTM platform using digital imaging of plant optical signals. In this study, 25 different morpho-physiological traits of the plant were evaluated during the precise control and monitoring of the water content in the soil. Different levels of plant water supply induced statistically significant differences in the formation of individual phenotypic traits. Several plant traits have been identified that are characterized by low variability in both well-hydrated and water-stressed conditions, as well as traits with high phenotypic plasticity. Geometric traits (especially Isotop, Round-2top, and Compside) showed a relatively low level of drought-induced phenotypic plasticity. However, functional and chemometric characteristics (ΔF/F′m, Rfd, Water-1, and ARI-1) showed the potential to exhibit rapid plasticity in water-stressed conditions. Our results confirmed that a high-throughput phenotyping methodology coupled with advanced statistical analysis tools can be successfully applied to characterize crop stress responses and identify traits associated with crop stress tolerance.

Publisher

Walter de Gruyter GmbH

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