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PMID: 12805628 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Systemic gene expression in Arabidopsis during an incompatible interaction with Alternaria brassicicola.

Plant physiology ·Vol. 132 ·No. 2 ·2003-06-00 ·Pages 999-1010

Schenk PM, Kazan K, Manners JM, Anderson JP, Simpson RS, Wilson IW, Somerville SC, Maclean DJ

Abstract

Pathogen challenge can trigger an integrated set of signal transduction pathways, which ultimately leads to a state of "high alert," otherwise known as systemic or induced resistance in tissue remote to the initial infection. Although large-scale gene expression during systemic acquired resistance, which is induced by salicylic acid or necrotizing pathogens has been previously reported using a bacterial pathogen, the nature of systemic defense responses triggered by an incompatible necrotrophic fungal pathogen is not known. We examined transcriptional changes that occur during systemic defense responses in Arabidopsis plants inoculated with the incompatible fungal pathogen Alternaria brassicicola. Substantial changes (2.00-fold and statistically significant) were demonstrated in distal tissue of inoculated plants for 35 genes (25 up-regulated and 10 down-regulated), and expression of a selected subset of systemically expressed genes was confirmed using real-time quantitative polymerase chain reaction. Genes with altered expression in distal tissue included those with putative functions in cellular housekeeping, indicating that plants modify these vital processes to facilitate a coordinated response to pathogen attack. Transcriptional up-regulation of genes encoding enzymes functioning in the beta-oxidation pathway of fatty acids was particularly interesting. Transcriptional up-regulation was also observed for genes involved in cell wall synthesis and modification and genes putatively involved in signal transduction. The results of this study, therefore, confirm the notion that distal tissue of a pathogen-challenged plant has a heightened preparedness for subsequent pathogen attacks.

MeSH Terms
Acyl Coenzyme A/metabolism Alternaria/genetics,pathogenicity Arabidopsis/genetics,metabolism,microbiology Base Sequence Cell Wall/genetics DNA Primers Enzymes/genetics Fatty Acids/metabolism Gene Expression Regulation, Plant/genetics Oligonucleotide Array Sequence Analysis Plant Diseases Reverse Transcriptase Polymerase Chain Reaction Signal Transduction/genetics
Chemicals
Acyl Coenzyme A DNA Primers Enzymes Fatty Acids
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Schenk Peer M
Cooperative Research Centre for Tropical Plant Protection, St. Lucia, Queensland 4072, Australia. p.schenk@tpp.uq.edu.au
Kazan Kemal
Manners John M
Anderson Jonathan P
Simpson Robert S
Wilson Iain W
Somerville Shauna C
Maclean Don J
References (51)
51 references, click to expand
  1. Comprehensive transcript profiling of Pto- and Prf-mediated host defense responses to infection by Pseudomonas syringae pv. tomato.
    Plant J. 2002 Nov;32(3):299-315 PMID: 12410809
  2. The promoter of the plant defensin gene PDF1.2 from Arabidopsis is systemically activated by fungal pathogens and responds to methyl jasmonate but not to salicylic acid.
    Plant Mol Biol. 1998 Dec;38(6):1071-80 PMID: 9869413
  3. Tandemly duplicated Arabidopsis genes that encode polygalacturonase-inhibiting proteins are regulated coordinately by different signal transduction pathways in response to fungal infection.
    Plant Cell. 2003 Jan;15(1):93-106 PMID: 12509524
  4. Elicitor-responsive promoter regions in the tryptophan decarboxylase gene from Catharanthus roseus.
    Plant Mol Biol. 1999 Jan;39(1):129-36 PMID: 10080715
  5. Jasmonate and salicylate as global signals for defense gene expression.
    Curr Opin Plant Biol. 1998 Oct;1(5):404-11 PMID: 10066616
  6. Coordinated plant defense responses in Arabidopsis revealed by microarray analysis.
    Proc Natl Acad Sci U S A. 2000 Oct 10;97(21):11655-60 PMID: 11027363
  7. The Arabidopsis mutant cev1 links cell wall signaling to jasmonate and ethylene responses.
    Plant Cell. 2002 Jul;14(7):1557-66 PMID: 12119374
  8. Identification of a novel gene HYS1/CPR5 that has a repressive role in the induction of leaf senescence and pathogen-defence responses in Arabidopsis thaliana.
    Plant J. 2002 Feb;29(4):427-37 PMID: 11846876
  9. MAP kinase signalling cascade in Arabidopsis innate immunity.
    Nature. 2002 Feb 28;415(6875):977-83 PMID: 11875555
  10. Molecular analysis of the NAC gene family in rice.
    Mol Gen Genet. 2000 Jan;262(6):1047-51 PMID: 10660065
  11. Evidence supporting a role of jasmonic acid in Arabidopsis leaf senescence.
    Plant Physiol. 2002 Mar;128(3):876-84 PMID: 11891244
  12. MAPK cascades in plant defense signaling.
    Trends Plant Sci. 2001 Nov;6(11):520-7 PMID: 11701380
  13. DNA microarrays: new tools in the analysis of plant defence responses.
    Mol Plant Pathol. 2001 May 1;2(3):177-85 PMID: 20573005
  14. Microarray analysis of chitin elicitation in Arabidopsis thaliana.
    Mol Plant Pathol. 2002 Sep 1;3(5):301-11 PMID: 20569338
  15. Pathogen-induced systemic activation of a plant defensin gene in Arabidopsis follows a salicylic acid-independent pathway.
    Plant Cell. 1996 Dec;8(12):2309-23 PMID: 8989885
  16. Salicylic Acid: a likely endogenous signal in the resistance response of tobacco to viral infection.
    Science. 1990 Nov 16;250(4983):1002-4 PMID: 17746925
  17. Roles of salicylic acid, jasmonic acid, and ethylene in cpr-induced resistance in arabidopsis.
    Plant Cell. 2000 Nov;12(11):2175-90 PMID: 11090217
  18. Increase in salicylic Acid at the onset of systemic acquired resistance in cucumber.
    Science. 1990 Nov 16;250(4983):1004-6 PMID: 17746926
  19. Monitoring the switch from housekeeping to pathogen defense metabolism in Arabidopsis thaliana using cDNA arrays.
    J Biol Chem. 2002 Mar 22;277(12):10555-61 PMID: 11748215
  20. The cpr5 mutant of Arabidopsis expresses both NPR1-dependent and NPR1-independent resistance.
    Plant Cell. 1997 Sep;9(9):1573-84 PMID: 9338960
  21. Expression of the Shpx2 peroxidase gene of Stylosanthes humilis in transgenic tobacco leads to enhanced resistance to Phytophthora parasitica pv. nicotianae and Cercospora nicotianae.
    Mol Plant Pathol. 2000 Jul 1;1(4):223-32 PMID: 20572969
  22. Monitoring the expression profiles of 7000 Arabidopsis genes under drought, cold and high-salinity stresses using a full-length cDNA microarray.
    Plant J. 2002 Aug;31(3):279-92 PMID: 12164808
  23. Diverse range of gene activity during Arabidopsis thaliana leaf senescence includes pathogen-independent induction of defense-related genes.
    Plant Mol Biol. 1999 May;40(2):267-78 PMID: 10412905
  24. Acquired Resistance in Barley (The Resistance Mechanism Induced by 2,6-Dichloroisonicotinic Acid Is a Phenocopy of a Genetically Based Mechanism Governing Race-Specific Powdery Mildew Resistance).
    Plant Physiol. 1994 Dec;106(4):1269-1277 PMID: 12232407
  25. 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
  26. CYP83B1, a cytochrome P450 at the metabolic branch point in auxin and indole glucosinolate biosynthesis in Arabidopsis.
    Plant Cell. 2001 Jan;13(1):101-11 PMID: 11158532
  27. Priming in plant-pathogen interactions.
    Trends Plant Sci. 2002 May;7(5):210-6 PMID: 11992826
  28. The transcriptome of Arabidopsis thaliana during systemic acquired resistance.
    Nat Genet. 2000 Dec;26(4):403-10 PMID: 11101835
  29. Separate jasmonate-dependent and salicylate-dependent defense-response pathways in Arabidopsis are essential for resistance to distinct microbial pathogens.
    Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):15107-11 PMID: 9844023
  30. Salicylic acid has a role in regulating gene expression during leaf senescence.
    Plant J. 2000 Sep;23(5):677-85 PMID: 10972893
  31. The Arabidopsis hrl1 mutation reveals novel overlapping roles for salicylic acid, jasmonic acid and ethylene signalling in cell death and defence against pathogens.
    Plant J. 2002 May;30(4):467-80 PMID: 12028576
  32. Complex spatial responses to cucumber mosaic virus infection in susceptible Cucurbita pepo cotyledons.
    Plant Cell. 2000 Oct;12(10):1975-86 PMID: 11041891
  33. Requirement of functional ethylene-insensitive 2 gene for efficient resistance of Arabidopsis to infection by Botrytis cinerea.
    Plant Physiol. 1999 Dec;121(4):1093-102 PMID: 10594097
  34. The Arabidopsis ref2 mutant is defective in the gene encoding CYP83A1 and shows both phenylpropanoid and glucosinolate phenotypes.
    Plant Cell. 2003 Jan;15(1):179-94 PMID: 12509530
  35. Non-photosynthetic 'malic enzyme' from maize: a constituvely expressed enzyme that responds to plant defence inducers.
    Plant Mol Biol. 2001 Mar;45(4):409-20 PMID: 11352460
  36. The jasmonate-inducible AP2/ERF-domain transcription factor ORCA3 activates gene expression via interaction with a jasmonate-responsive promoter element.
    Plant J. 2001 Jan;25(1):43-53 PMID: 11169181
  37. Rice cationic peroxidase accumulates in xylem vessels during incompatible interactions with Xanthomonas oryzae pv oryzae.
    Plant Physiol. 1995 Apr;107(4):1333-41 PMID: 7770527
  38. Using biplots to interpret gene expression patterns in plants.
    Bioinformatics. 2002 Jan;18(1):202-4 PMID: 11836233
  39. The involvement of two p450 enzymes, CYP83B1 and CYP83A1, in auxin homeostasis and glucosinolate biosynthesis.
    Plant Physiol. 2001 Sep;127(1):108-18 PMID: 11553739
  40. Pathways of straight and branched chain fatty acid catabolism in higher plants.
    Prog Lipid Res. 2002 Mar;41(2):156-81 PMID: 11755682
  41. PMR6, a pectate lyase-like gene required for powdery mildew susceptibility in Arabidopsis.
    Plant Cell. 2002 Sep;14(9):2095-106 PMID: 12215508
  42. Interplay of signaling pathways in plant disease resistance.
    Trends Genet. 2000 Oct;16(10):449-55 PMID: 11050331
  43. Differential expression of a senescence-enhanced metallothionein gene in Arabidopsis in response to isolates of Peronospora parasitica and Pseudomonas syringae.
    Plant J. 1998 Oct;16(2):209-21 PMID: 9839466
  44. A custom microarray analysis of gene expression during programmed cell death in Arabidopsis thaliana.
    Plant J. 2002 May;30(4):431-46 PMID: 12028573
  45. The complexity of disease signaling in Arabidopsis.
    Curr Opin Immunol. 2001 Feb;13(1):63-8 PMID: 11154919
  46. Study of the role of antimicrobial glucosinolate-derived isothiocyanates in resistance of Arabidopsis to microbial pathogens.
    Plant Physiol. 2001 Apr;125(4):1688-99 PMID: 11299350
  47. Oxylipin metabolism in response to stress.
    Curr Opin Plant Biol. 2002 Jun;5(3):230-6 PMID: 11960741
  48. Engineering secondary metabolite production in plants.
    Curr Opin Biotechnol. 2002 Apr;13(2):181-7 PMID: 11950573
  49. Expression profile matrix of Arabidopsis transcription factor genes suggests their putative functions in response to environmental stresses.
    Plant Cell. 2002 Mar;14(3):559-74 PMID: 11910004
  50. Leaf senescence in Brassica napus: expression of genes encoding pathogenesis-related proteins.
    Plant Mol Biol. 1996 Feb;30(3):597-609 PMID: 8605308
  51. Systemic Acquired Resistance.
    Plant Cell. 1996 Oct;8(10):1809-1819 PMID: 12239363
Article Info
Journal
Plant physiology
Abbr.
Plant Physiol
ISSN
0032-0889
Published
2003-06-00
Epub
2003-00-01
Pages
999-1010
Language
English
Region
United States
NLM ID
0401224
PMCID
PMC167038
Subset
IM
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