Leaf ontogeny modulates epinasty through shifts in hormone dynamics during waterlogging in tomato

Author:

Geldhof Batist1ORCID,Novák Ondřej2ORCID,Van de Poel Bram13ORCID

Affiliation:

1. Molecular Plant Hormone Physiology Lab, Division of Crop Biotechnics, Department of Biosystems, KU Leuven , Willem de Croylaan 42, Leuven 3001 , Belgium

2. Laboratory of Growth Regulators, Centre of the Region Haná for Biotechnological and Agricultural Research, Institute of Experimental Botany, Czech Academy of Sciences, and Faculty of Science, Palacký University , CZ-783 71 Olomouc , Czech Republic

3. KU Leuven Plant Institute (LPI), KU Leuven , Arenbergpark 30, 3001 Leuven , Belgium

Abstract

Abstract Waterlogging leads to hypoxic conditions in the root zone that subsequently cause systemic adaptive responses in the shoot, including leaf epinasty. Waterlogging-induced epinasty in tomato has long been ascribed to the coordinated action of ethylene and auxins. However, other hormonal signals have largely been neglected, despite evidence of their importance in leaf posture control. To cover a large group of growth regulators, we performed a tissue-specific and time-dependent hormonomics analysis. This revealed that multiple hormones are differentially affected throughout a 48 h waterlogging treatment, and that leaf age determines hormone homeostasis and modulates their changes during waterlogging. In addition, we distinguished early hormonal signals that contribute to fast responses to oxygen deprivation from those that potentially sustain the waterlogging response. We found that abscisic acid (ABA) levels peak in petioles within the first 12 h of the treatment, while its precursors only increase much later, suggesting that ABA transport is altered. At the same time, cytokinins (CKs) and their derivatives drastically decline during waterlogging in leaves of all ages. This drop in CKs possibly releases the inhibition of ethylene- and auxin-mediated cell elongation to establish epinastic bending. Auxins themselves rise substantially in the petiole of mature leaves, but mostly after 48 h of root hypoxia. Based on our hormone profiling, we propose that ethylene and ABA might act synergistically as an early signal to induce epinasty, while the balance of indole-3-acetic acid and CKs in the petiole ultimately regulates differential growth.

Funder

Research Foundation Flanders

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

Reference88 articles.

1. Defective cytokinin signaling reprograms lipid and flavonoid gene-to-metabolite networks to mitigate high salinity in Arabidopsis;Abdelrahman,2021

2. Hormonal modulation of citrus responses to flooding;Arbona,2008

3. Depletion of abscisic acid levels in roots of flooded Carrizo citrange (Poncirus trifoliata L Raf × Citrus sinensis L Osb) plants is a stress-specific response associated to the differential expression of PYR/PYL/RCAR receptors;Arbona,2017

4. Contrasting interactions between ethylene and abscisic acid in Rumex species differing in submergence tolerance;Benschop,2005

5. Abscisic acid antagonizes ethylene-induced hyponastic growth in Arabidopsis;Benschop,2007

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