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PMID: 32717347 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The IBI1 Receptor of β-Aminobutyric Acid Interacts with VOZ Transcription Factors to Regulate Abscisic Acid Signaling and Callose-Associated Defense.

Molecular plant ·Vol. 13 ·No. 10 ·2020-00-05 ·Pages 1455-1469

Schwarzenbacher RE, Wardell G, Stassen J, Guest E, Zhang P, Luna E, Ton J

Abstract

External and internal signals can prime the plant immune system for a faster and/or stronger response to pathogen attack. β-aminobutyric acid (BABA) is an endogenous stress metabolite that induces broad-spectrum disease resistance in plants. BABA perception in Arabidopsis is mediated by the aspartyl tRNA synthetase IBI1, which activates priming of multiple immune responses, including callose-associated cell wall defenses that are under control by abscisic acid (ABA). However, the immediate signaling components after BABA perception by IBI1, as well as the regulatory role of ABA therein, remain unknown. Here, we have studied the early signaling events controlling IBI1-dependent BABA-induced resistance (BABA-IR), using untargeted transcriptome and protein interaction analyses. Transcriptome analysis revealed that IBI1-dependent expression of BABA-IR against the biotrophic oomycete Hyaloperonospora arabidopsidis is associated with suppression of ABA-inducible abiotic stress genes. Protein interaction studies identified the VOZ1 and VOZ2 transcription factors (TFs) as IBI1-interacting partners, which are transcriptionally induced by ABA but suppress pathogen-induced expression of ABA-dependent genes. Furthermore, we show that VOZ TFs require nuclear localization for their contribution to BABA-IR by mediating augmented expression of callose-associated defense. Collectively, our study indicates that the IBI1-VOZ signaling module channels pathogen-induced ABA signaling toward cell wall defense while simultaneously suppressing abiotic stress-responsive genes.

Keywords
E-MTAB-8720 IBI1 abscisic acid callose priming β-aminobutyric acid
MeSH Terms
Abscisic Acid/metabolism Aminobutyrates/metabolism Arabidopsis Proteins/metabolism Cell Wall/metabolism Disease Resistance Gene Expression Regulation, Plant/genetics,physiology Glucans/metabolism Mutation/genetics Phylogeny Transcription Factors/metabolism
Chemicals
Aminobutyrates Arabidopsis Proteins Glucans Transcription Factors VOZ1 protein, Arabidopsis VOZ2 protein, Arabidopsis 3-aminobutyric acid Abscisic Acid callose
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Schwarzenbacher Roland E
P3 Institute for Plant and Soil Biology, Department of Animal and Plant Sciences, The University of Sheffield, Sheffield S10 2TN, UK.
Wardell Grace
P3 Institute for Plant and Soil Biology, Department of Animal and Plant Sciences, The University of Sheffield, Sheffield S10 2TN, UK.
Stassen Joost
P3 Institute for Plant and Soil Biology, Department of Animal and Plant Sciences, The University of Sheffield, Sheffield S10 2TN, UK.
Guest Emily
P3 Institute for Plant and Soil Biology, Department of Animal and Plant Sciences, The University of Sheffield, Sheffield S10 2TN, UK.
Zhang Peijun
P3 Institute for Plant and Soil Biology, Department of Animal and Plant Sciences, The University of Sheffield, Sheffield S10 2TN, UK.
Luna Estrella
P3 Institute for Plant and Soil Biology, Department of Animal and Plant Sciences, The University of Sheffield, Sheffield S10 2TN, UK.
Ton Jurriaan
P3 Institute for Plant and Soil Biology, Department of Animal and Plant Sciences, The University of Sheffield, Sheffield S10 2TN, UK. Electronic address: j.ton@sheffield.ac.uk.
References (75)
75 references, click to expand
  1. Ras-Raf interaction: two-hybrid analysis.
    Methods Enzymol. 1995;255:331-42 PMID: 8524119
  2. SUBA4: the interactive data analysis centre for Arabidopsis subcellular protein locations.
    Nucleic Acids Res. 2017 Jan 4;45(D1):D1064-D1074 PMID: 27899614
  3. Signaling mechanisms in pattern-triggered immunity (PTI).
    Mol Plant. 2015 Apr;8(4):521-39 PMID: 25744358
  4. Disease-specific expression of host genes during downy mildew infection of Arabidopsis.
    Mol Plant Microbe Interact. 2009 Sep;22(9):1104-15 PMID: 19656045
  5. Proteomics and transcriptomics of the BABA-induced resistance response in potato using a novel functional annotation approach.
    BMC Genomics. 2014 Apr 28;15:315 PMID: 24773703
  6. Priming of the Arabidopsis pattern-triggered immunity response upon infection by necrotrophic Pectobacterium carotovorum bacteria.
    Mol Plant Pathol. 2013 Jan;14(1):58-70 PMID: 22947164
  7. Priming of plant innate immunity by rhizobacteria and beta-aminobutyric acid: differences and similarities in regulation.
    New Phytol. 2009;183(2):419-31 PMID: 19413686
  8. L-Glutamine inhibits beta-aminobutyric acid-induced stress resistance and priming in Arabidopsis.
    J Exp Bot. 2010 Feb;61(4):995-1002 PMID: 20007686
  9. Predisposition in plant disease: exploiting the nexus in abiotic and biotic stress perception and response.
    Annu Rev Phytopathol. 2014;52:517-49 PMID: 25001451
  10. Arabidopsis sphingolipid fatty acid 2-hydroxylases (AtFAH1 and AtFAH2) are functionally differentiated in fatty acid 2-hydroxylation and stress responses.
    Plant Physiol. 2012 Jul;159(3):1138-48 PMID: 22635113
  11. BAX inhibitor-1 modulates endoplasmic reticulum stress-mediated programmed cell death in Arabidopsis.
    J Biol Chem. 2008 Feb 8;283(6):3200-10 PMID: 18039663
  12. The phytochrome-interacting vascular plant one-zinc finger1 and VOZ2 redundantly regulate flowering in Arabidopsis.
    Plant Cell. 2012 Aug;24(8):3248-63 PMID: 22904146
  13. Natural variation in priming of basal resistance: from evolutionary origin to agricultural exploitation.
    Mol Plant Pathol. 2010 Nov;11(6):817-27 PMID: 21029325
  14. Prediction, assessment and validation of protein interaction maps in bacteria.
    J Mol Biol. 2002 Nov 1;323(4):763-70 PMID: 12419263
  15. Abscisic acid influences the susceptibility of Arabidopsis thaliana to Pseudomonas syringae pv. tomato and Peronospora parasitica.
    Funct Plant Biol. 2003 May;30(4):461-469 PMID: 32689031
  16. Potentiation of pathogen-specific defense mechanisms in Arabidopsis by beta -aminobutyric acid.
    Proc Natl Acad Sci U S A. 2000 Nov 7;97(23):12920-5 PMID: 11058166
  17. The receptor kinase IMPAIRED OOMYCETE SUSCEPTIBILITY1 attenuates abscisic acid responses in Arabidopsis.
    Plant Physiol. 2014 Nov;166(3):1506-18 PMID: 25274985
  18. IRE1/bZIP60-mediated unfolded protein response plays distinct roles in plant immunity and abiotic stress responses.
    PLoS One. 2012;7(2):e31944 PMID: 22359644
  19. Protein interaction mapping: a Drosophila case study.
    Genome Res. 2005 Mar;15(3):376-84 PMID: 15710747
  20. GOrilla: a tool for discovery and visualization of enriched GO terms in ranked gene lists.
    BMC Bioinformatics. 2009 Feb 03;10:48 PMID: 19192299
  21. Interplay between JA, SA and ABA signalling during basal and induced resistance against Pseudomonas syringae and Alternaria brassicicola.
    Plant J. 2008 Apr;54(1):81-92 PMID: 18088307
  22. Elevated early callose deposition results in complete penetration resistance to powdery mildew in Arabidopsis.
    Plant Physiol. 2013 Mar;161(3):1433-44 PMID: 23335625
  23. Balancing trade-offs between biotic and abiotic stress responses through leaf age-dependent variation in stress hormone cross-talk.
    Proc Natl Acad Sci U S A. 2019 Feb 5;116(6):2364-2373 PMID: 30674663
  24. Benzothiadiazole-induced priming for potentiated responses to pathogen infection, wounding, and infiltration of water into leaves requires the NPR1/NIM1 gene in Arabidopsis.
    Plant Physiol. 2002 Mar;128(3):1046-56 PMID: 11891259
  25. A gene expression map of Arabidopsis thaliana development.
    Nat Genet. 2005 May;37(5):501-6 PMID: 15806101
  26. The protein-protein interaction map of Helicobacter pylori.
    Nature. 2001 Jan 11;409(6817):211-5 PMID: 11196647
  27. affy--analysis of Affymetrix GeneChip data at the probe level.
    Bioinformatics. 2004 Feb 12;20(3):307-15 PMID: 14960456
  28. Exploration, normalization, and summaries of high density oligonucleotide array probe level data.
    Biostatistics. 2003 Apr;4(2):249-64 PMID: 12925520
  29. Arabidopsis ocp3 mutant reveals a mechanism linking ABA and JA to pathogen-induced callose deposition.
    Plant J. 2011 Sep;67(5):783-94 PMID: 21564353
  30. Endoplasmic Reticulum Stress Signaling in Plant Immunity--At the Crossroad of Life and Death.
    Int J Mol Sci. 2015 Nov 05;16(11):26582-98 PMID: 26556351
  31. NetAffx: Affymetrix probesets and annotations.
    Nucleic Acids Res. 2003 Jan 1;31(1):82-6 PMID: 12519953
  32. Arabidopsis eIF2alpha kinase GCN2 is essential for growth in stress conditions and is activated by wounding.
    BMC Plant Biol. 2008 Dec 24;8:134 PMID: 19108716
  33. A central role of salicylic Acid in plant disease resistance.
    Science. 1994 Nov 18;266(5188):1247-50 PMID: 17810266
  34. The role of DNA (de)methylation in immune responsiveness of Arabidopsis.
    Plant J. 2016 Nov;88(3):361-374 PMID: 27341062
  35. arrayQualityMetrics--a bioconductor package for quality assessment of microarray data.
    Bioinformatics. 2009 Feb 1;25(3):415-6 PMID: 19106121
  36. The priming molecule β-aminobutyric acid is naturally present in plants and is induced by stress.
    New Phytol. 2017 Jan;213(2):552-559 PMID: 27782340
  37. Preparing to fight back: generation and storage of priming compounds.
    Front Plant Sci. 2014 Jun 24;5:295 PMID: 25009546
  38. A framework for oligonucleotide microarray preprocessing.
    Bioinformatics. 2010 Oct 1;26(19):2363-7 PMID: 20688976
  39. A novel role of PR2 in abscisic acid (ABA) mediated, pathogen-induced callose deposition in Arabidopsis thaliana.
    New Phytol. 2013 Dec;200(4):1187-99 PMID: 23952213
  40. Analyzing protein-protein interactions using two-hybrid system.
    Methods Enzymol. 1995;254:241-63 PMID: 8531690
  41. Pseudomonas syringae pv. tomato hijacks the Arabidopsis abscisic acid signalling pathway to cause disease.
    EMBO J. 2007 Mar 7;26(5):1434-43 PMID: 17304219
  42. Chemical priming of immunity without costs to plant growth.
    New Phytol. 2018 May;218(3):1205-1216 PMID: 29465773
  43. Induction of protein secretory pathway is required for systemic acquired resistance.
    Science. 2005 May 13;308(5724):1036-40 PMID: 15890886
  44. Timing of plant immune responses by a central circadian regulator.
    Nature. 2011 Feb 3;470(7332):110-4 PMID: 21293378
  45. Fine tuning of reactive oxygen species homeostasis regulates primed immune responses in Arabidopsis.
    Mol Plant Microbe Interact. 2013 Nov;26(11):1334-44 PMID: 24088017
  46. The discovery of the BABA receptor: scientific implications and application potential.
    Front Plant Sci. 2014 Jun 25;5:304 PMID: 25009548
  47. Antagonistic interaction between systemic acquired resistance and the abscisic acid-mediated abiotic stress response in Arabidopsis.
    Plant Cell. 2008 Jun;20(6):1678-92 PMID: 18586869
  48. An "Electronic Fluorescent Pictograph" browser for exploring and analyzing large-scale biological data sets.
    PLoS One. 2007 Aug 08;2(8):e718 PMID: 17684564
  49. Beta-amino-butyric acid-induced resistance against necrotrophic pathogens is based on ABA-dependent priming for callose.
    Plant J. 2004 Apr;38(1):119-30 PMID: 15053765
  50. The multifaceted role of ABA in disease resistance.
    Trends Plant Sci. 2009 Jun;14(6):310-7 PMID: 19443266
  51. Translational Regulation of Metabolic Dynamics during Effector-Triggered Immunity.
    Mol Plant. 2020 Jan 6;13(1):88-98 PMID: 31568832
  52. Abscisic acid promotes proteasome-mediated degradation of the transcription coactivator NPR1 in Arabidopsis thaliana.
    Plant J. 2016 Apr;86(1):20-34 PMID: 26865090
  53. Plant perception of β-aminobutyric acid is mediated by an aspartyl-tRNA synthetase.
    Nat Chem Biol. 2014 Jun;10(6):450-6 PMID: 24776930
  54. Abscisic acid determines basal susceptibility of tomato to Botrytis cinerea and suppresses salicylic acid-dependent signaling mechanisms.
    Plant Physiol. 2002 Feb;128(2):491-501 PMID: 11842153
  55. Getting more from the two-hybrid system: N-terminal fusions to LexA are efficient and sensitive baits for two-hybrid studies.
    Nucleic Acids Res. 1997 May 15;25(10):2035-6 PMID: 9115375
  56. Callose biosynthesis in Arabidopsis with a focus on pathogen response: what we have learned within the last decade.
    Ann Bot. 2014 Oct;114(6):1349-58 PMID: 24984713
  57. Enhancing Arabidopsis salt and drought stress tolerance by chemical priming for its abscisic acid responses.
    Plant Physiol. 2005 Sep;139(1):267-74 PMID: 16113213
  58. Abscisic acid has a key role in modulating diverse plant-pathogen interactions.
    Plant Physiol. 2009 Aug;150(4):1750-61 PMID: 19571312
  59. Molecular aspects of defence priming.
    Trends Plant Sci. 2011 Oct;16(10):524-31 PMID: 21782492
  60. Priming: getting ready for battle.
    Mol Plant Microbe Interact. 2006 Oct;19(10):1062-71 PMID: 17022170
  61. TM4 microarray software suite.
    Methods Enzymol. 2006;411:134-93 PMID: 16939790
  62. Dissecting the beta-aminobutyric acid-induced priming phenomenon in Arabidopsis.
    Plant Cell. 2005 Mar;17(3):987-99 PMID: 15722464
  63. Antagonistic interaction between abscisic acid and jasmonate-ethylene signaling pathways modulates defense gene expression and disease resistance in Arabidopsis.
    Plant Cell. 2004 Dec;16(12):3460-79 PMID: 15548743
  64. Requirement of salicylic Acid for the induction of systemic acquired resistance.
    Science. 1993 Aug 6;261(5122):754-6 PMID: 17757215
  65. Pathogen-associated molecular pattern-triggered immunity: veni, vidi...?
    Plant Physiol. 2010 Oct;154(2):551-4 PMID: 20921183
  66. ABA is an essential signal for plant resistance to pathogens affecting JA biosynthesis and the activation of defenses in Arabidopsis.
    Plant Cell. 2007 May;19(5):1665-81 PMID: 17513501
  67. Orchestrating high-throughput genomic analysis with Bioconductor.
    Nat Methods. 2015 Feb;12(2):115-21 PMID: 25633503
  68. Differential effectiveness of salicylate-dependent and jasmonate/ethylene-dependent induced resistance in Arabidopsis.
    Mol Plant Microbe Interact. 2002 Jan;15(1):27-34 PMID: 11858171
  69. A simple and robust protocol for immunostaining Arabidopsis pollen nuclei.
    Plant Reprod. 2019 Mar;32(1):39-43 PMID: 30671645
  70. Expression profiling during arabidopsis/downy mildew interaction reveals a highly-expressed effector that attenuates responses to salicylic acid.
    PLoS Pathog. 2014 Oct 16;10(10):e1004443 PMID: 25329884
  71. Toward a functional analysis of the yeast genome through exhaustive two-hybrid screens.
    Nat Genet. 1997 Jul;16(3):277-82 PMID: 9207794
  72. Genome-wide identification and testing of superior reference genes for transcript normalization in Arabidopsis.
    Plant Physiol. 2005 Sep;139(1):5-17 PMID: 16166256
  73. Vascular plant one-zinc-finger protein 1/2 transcription factors regulate abiotic and biotic stress responses in Arabidopsis.
    Plant J. 2013 Mar;73(5):761-75 PMID: 23167462
  74. Loss of a callose synthase results in salicylic acid-dependent disease resistance.
    Science. 2003 Aug 15;301(5635):969-72 PMID: 12920300
  75. A high resolution map of the Arabidopsis thaliana developmental transcriptome based on RNA-seq profiling.
    Plant J. 2016 Dec;88(6):1058-1070 PMID: 27549386
Article Info
Journal
Molecular plant
Abbr.
Mol Plant
ISSN
1752-9867
Published
2020-00-05
Epub
2020-00-25
Pages
1455-1469
Language
English
Region
England
NLM ID
101465514
PMCID
PMC7550849
Subset
IM
Grants
European Research Council · 309944 · International
Biotechnology and Biological Sciences Research Council · BB/P006698/1 · United Kingdom
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