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Action of natural abscisic acid precursors and catabolites on abscisic acid receptor complexes.
- Source :
-
Plant physiology [Plant Physiol] 2011 Dec; Vol. 157 (4), pp. 2108-19. Date of Electronic Publication: 2011 Oct 05. - Publication Year :
- 2011
-
Abstract
- The phytohormone abscisic acid (ABA) regulates stress responses and controls numerous aspects of plant growth and development. Biosynthetic precursors and catabolites of ABA have been shown to trigger ABA responses in physiological assays, but it is not clear whether these are intrinsically active or whether they are converted into ABA in planta. In this study, we analyzed the effect of ABA precursors, conjugates, and catabolites on hormone signaling in Arabidopsis (Arabidopsis thaliana). The compounds were also tested in vitro for their ability to regulate the phosphatase moiety of ABA receptor complexes consisting of the protein phosphatase 2C ABI2 and the coreceptors RCAR1/PYL9, RCAR3/PYL8, and RCAR11/PYR1. Using mutants defective in ABA biosynthesis, we show that the physiological activity associated with ABA precursors derives predominantly from their bioconversion to ABA. The ABA glucose ester conjugate, which is the most widespread storage form of ABA, showed weak ABA-like activity in germination assays and in triggering ABA signaling in protoplasts. The ABA conjugate and precursors showed negligible activity as a regulatory ligand of the ABI2/RCAR receptor complexes. The majority of ABA catabolites were inactive in our assays. To analyze the chemically unstable 8'- and 9'-hydroxylated ABA catabolites, we used stable tetralone derivatives of these compounds, which did trigger selective ABA responses. ABA synthetic analogs exhibited differential activity as regulatory ligands of different ABA receptor complexes in vitro. The data show that ABA precursors, catabolites, and conjugates have limited intrinsic bioactivity and that both natural and synthetic ABA-related compounds can be used to probe the structural requirements of ABA ligand-receptor interactions.
- Subjects :
- Abscisic Acid chemistry
Abscisic Acid metabolism
Arabidopsis genetics
Arabidopsis Proteins genetics
Carrier Proteins genetics
Carrier Proteins metabolism
Gene Expression Regulation, Plant drug effects
Genes, Reporter
Germination drug effects
Germination genetics
Germination physiology
Intracellular Signaling Peptides and Proteins
Membrane Transport Proteins genetics
Membrane Transport Proteins metabolism
Mutation
Phosphoprotein Phosphatases genetics
Phosphoprotein Phosphatases metabolism
Plant Growth Regulators chemistry
Plant Growth Regulators metabolism
Plant Leaves drug effects
Plant Leaves genetics
Plant Leaves physiology
Plant Roots drug effects
Plant Roots genetics
Plant Roots physiology
Plant Stomata drug effects
Plant Stomata genetics
Plant Stomata physiology
Plants, Genetically Modified
Protoplasts
Recombinant Fusion Proteins
Seedlings drug effects
Seedlings genetics
Seedlings physiology
Seeds drug effects
Seeds genetics
Seeds physiology
Signal Transduction drug effects
Tetralones chemistry
Tetralones metabolism
Tetralones pharmacology
Abscisic Acid pharmacology
Arabidopsis drug effects
Arabidopsis physiology
Arabidopsis Proteins metabolism
Plant Growth Regulators pharmacology
Subjects
Details
- Language :
- English
- ISSN :
- 1532-2548
- Volume :
- 157
- Issue :
- 4
- Database :
- MEDLINE
- Journal :
- Plant physiology
- Publication Type :
- Academic Journal
- Accession number :
- 21976481
- Full Text :
- https://doi.org/10.1104/pp.111.182584