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PMID: 17298188 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

A novel role for the TIR domain in association with pathogen-derived elicitors.

PLoS biology ·Vol. 5 ·No. 3 ·2007-03-00 ·Pages e68

Burch-Smith TM, Schiff M, Caplan JL, Tsao J, Czymmek K, Dinesh-Kumar SP

Abstract

Plant innate immunity is mediated by Resistance (R) proteins, which bear a striking resemblance to animal molecules of similar function. Tobacco N is a TIR-NB-LRR R gene that confers resistance to Tobacco mosaic virus, specifically the p50 helicase domain. An intriguing question is how plant R proteins recognize the presence of pathogen-derived Avirulence (Avr) elicitor proteins. We have used biochemical cell fraction and immunoprecipitation in addition to confocal fluorescence microscopy of living tissue to examine the association between N and p50. Surprisingly, both N and p50 are cytoplasmic and nuclear proteins, and N's nuclear localization is required for its function. We also demonstrate an in planta association between N and p50. Further, we show that N's TIR domain is critical for this association, and indeed, it alone can associate with p50. Our results differ from current models for plant innate immunity that propose detection is mediated solely through the LRR domains of these molecules. The data we present support an intricate process of pathogen elicitor recognition by R proteins involving multiple subcellular compartments and the formation of multiple protein complexes.

MeSH Terms
Amino Acid Sequence Immunity, Innate Plant Proteins/physiology Plants/immunology,virology Polymerase Chain Reaction Tobacco Mosaic Virus/pathogenicity Virulence
Chemicals
Plant Proteins
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Burch-Smith Tessa M
Department of Molecular, Cellular, and Developmental Biology, Yale University, New Haven, Connecticut, United States of America.
Schiff Michael
Caplan Jeffrey L
Tsao Jeffrey
Czymmek Kirk
Dinesh-Kumar Savithramma P
References (43)
43 references, click to expand
  1. Cleavage of Arabidopsis PBS1 by a bacterial type III effector.
    Science. 2003 Aug 29;301(5637):1230-3 PMID: 12947197
  2. Physical interaction between RRS1-R, a protein conferring resistance to bacterial wilt, and PopP2, a type III effector targeted to the plant nucleus.
    Proc Natl Acad Sci U S A. 2003 Jun 24;100(13):8024-9 PMID: 12788974
  3. RIN4 interacts with Pseudomonas syringae type III effector molecules and is required for RPM1-mediated resistance in Arabidopsis.
    Cell. 2002 Mar 22;108(6):743-54 PMID: 11955429
  4. Reducing the environmental sensitivity of yellow fluorescent protein. Mechanism and applications.
    J Biol Chem. 2001 Aug 3;276(31):29188-94 PMID: 11387331
  5. Initiation of RPS2-specified disease resistance in Arabidopsis is coupled to the AvrRpt2-directed elimination of RIN4.
    Cell. 2003 Feb 7;112(3):369-77 PMID: 12581526
  6. Direct interaction between the tobacco mosaic virus helicase domain and the ATP-bound resistance protein, N factor during the hypersensitive response in tobacco plants.
    Plant Mol Biol. 2006 May;61(1-2):31-45 PMID: 16786290
  7. Resistance to Ralstonia solanacearum in Arabidopsis thaliana is conferred by the recessive RRS1-R gene, a member of a novel family of resistance genes.
    Proc Natl Acad Sci U S A. 2002 Feb 19;99(4):2404-9 PMID: 11842188
  8. Molecular chaperone Hsp90 associates with resistance protein N and its signaling proteins SGT1 and Rar1 to modulate an innate immune response in plants.
    J Biol Chem. 2004 Jan 16;279(3):2101-8 PMID: 14583611
  9. Molecular interactions between tomato and the leaf mold pathogen Cladosporium fulvum.
    Annu Rev Phytopathol. 2005;43:395-436 PMID: 16078890
  10. Alternatively spliced N resistance gene transcripts: their possible role in tobacco mosaic virus resistance.
    Proc Natl Acad Sci U S A. 2000 Feb 15;97(4):1908-13 PMID: 10660679
  11. The helicase domain of the TMV replicase proteins induces the N-mediated defence response in tobacco.
    Plant J. 1999 Apr;18(1):67-75 PMID: 10341444
  12. RAR1 positively controls steady state levels of barley MLA resistance proteins and enables sufficient MLA6 accumulation for effective resistance.
    Plant Cell. 2004 Dec;16(12):3480-95 PMID: 15548741
  13. Visualization of protein interactions in living plant cells using bimolecular fluorescence complementation.
    Plant J. 2004 Nov;40(3):428-38 PMID: 15469500
  14. Structure-function analysis of the tobacco mosaic virus resistance gene N.
    Proc Natl Acad Sci U S A. 2000 Dec 19;97(26):14789-94 PMID: 11121079
  15. Regions outside of the leucine-rich repeats of flax rust resistance proteins play a role in specificity determination.
    Plant Cell. 2000 Aug;12(8):1367-77 PMID: 10948256
  16. Understanding the functions of plant disease resistance proteins.
    Annu Rev Plant Biol. 2003;54:23-61 PMID: 14502984
  17. Direct interaction of resistance gene and avirulence gene products confers rice blast resistance.
    EMBO J. 2000 Aug 1;19(15):4004-14 PMID: 10921881
  18. Innate immunity in plants and animals: striking similarities and obvious differences.
    Immunol Rev. 2004 Apr;198:249-66 PMID: 15199967
  19. Leucine-rich repeats and pathogen recognition in Toll-like receptors.
    Trends Immunol. 2003 Oct;24(10):528-33 PMID: 14552836
  20. The tomato resistance protein Bs4 is a predicted non-nuclear TIR-NB-LRR protein that mediates defense responses to severely truncated derivatives of AvrBs4 and overexpressed AvrBs3.
    Plant J. 2004 Jan;37(1):46-60 PMID: 14675431
  21. The Arabidopsis downy mildew resistance gene RPP5 shares similarity to the toll and interleukin-1 receptors with N and L6.
    Plant Cell. 1997 Jun;9(6):879-94 PMID: 9212464
  22. Analysis of a tobacco mosaic virus strain capable of overcoming N gene-mediated resistance.
    Plant Cell. 1993 May;5(5):577-86 PMID: 8518557
  23. Host-microbe interactions: shaping the evolution of the plant immune response.
    Cell. 2006 Feb 24;124(4):803-14 PMID: 16497589
  24. Molecular Basis of Gene-for-Gene Specificity in Bacterial Speck Disease of Tomato
    Science. 1996 Dec 20;274(5295):2063-5 PMID: 8953034
  25. Direct protein interaction underlies gene-for-gene specificity and coevolution of the flax resistance genes and flax rust avirulence genes.
    Proc Natl Acad Sci U S A. 2006 Jun 6;103(23):8888-93 PMID: 16731621
  26. Identification of regions in alleles of the flax rust resistance gene L that determine differences in gene-for-gene specificity.
    Plant Cell. 1999 Mar;11(3):495-506 PMID: 10072407
  27. The NB-ARC domain: a novel signalling motif shared by plant resistance gene products and regulators of cell death in animals.
    Curr Biol. 1998 Mar 26;8(7):R226-7 PMID: 9545207
  28. NLRs join TLRs as innate sensors of pathogens.
    Trends Immunol. 2005 Aug;26(8):447-54 PMID: 15967716
  29. Identification of a signal for rapid export of proteins from the nucleus.
    Cell. 1995 Aug 11;82(3):463-73 PMID: 7634336
  30. Eukaryotic fatty acylation drives plasma membrane targeting and enhances function of several type III effector proteins from Pseudomonas syringae.
    Cell. 2000 May 12;101(4):353-63 PMID: 10830163
  31. The tomato NBARC-LRR protein Prf interacts with Pto kinase in vivo to regulate specific plant immunity.
    Plant Cell. 2006 Oct;18(10):2792-806 PMID: 17028203
  32. Cladosporium Avr2 inhibits tomato Rcr3 protease required for Cf-2-dependent disease resistance.
    Science. 2005 Jun 17;308(5729):1783-6 PMID: 15845874
  33. An improved cyan fluorescent protein variant useful for FRET.
    Nat Biotechnol. 2004 Apr;22(4):445-9 PMID: 14990965
  34. Mechanisms of plant resistance to viruses.
    Nat Rev Microbiol. 2005 Oct;3(10):789-98 PMID: 16132037
  35. A greener world: the revolution in plant bioimaging.
    Nat Rev Mol Cell Biol. 2002 Jul;3(7):520-30 PMID: 12094218
  36. Molecular genetic evidence for the role of SGT1 in the intramolecular complementation of Bs2 protein activity in Nicotiana benthamiana.
    Plant Cell. 2005 Apr;17(4):1268-78 PMID: 15749757
  37. Elicitor-mediated oligomerization of the tobacco N disease resistance protein.
    Plant Cell. 2006 Feb;18(2):491-501 PMID: 16387833
  38. Visualization of interactions among bZIP and Rel family proteins in living cells using bimolecular fluorescence complementation.
    Mol Cell. 2002 Apr;9(4):789-98 PMID: 11983170
  39. Initiation of Plant Disease Resistance by Physical Interaction of AvrPto and Pto Kinase
    Science. 1996 Dec 20;274(5295):2060-3 PMID: 8953033
  40. Induction of a hypersensitive response by chimeric helicase sequences of tobamoviruses U1 and Ob in N-carrying tobacco.
    Mol Plant Microbe Interact. 2001 Sep;14(9):1086-95 PMID: 11551073
  41. Plant disease-resistance proteins and the gene-for-gene concept.
    Trends Biochem Sci. 1998 Dec;23(12):454-6 PMID: 9868361
  42. The Arabidopsis thaliana RPM1 disease resistance gene product is a peripheral plasma membrane protein that is degraded coincident with the hypersensitive response.
    Proc Natl Acad Sci U S A. 1998 Dec 22;95(26):15849-54 PMID: 9861059
  43. The product of the tobacco mosaic virus resistance gene N: similarity to toll and the interleukin-1 receptor.
    Cell. 1994 Sep 23;78(6):1101-15 PMID: 7923359
Article Info
Journal
PLoS biology
Abbr.
PLoS Biol
ISSN
1545-7885
Published
2007-03-00
Pages
e68
Language
English
Region
United States
NLM ID
101183755
PMCID
PMC1820829
Subset
IM
Grants
NIGMS NIH HHS · R01 GM062625 · United States
NIGMS NIH HHS · GM62625 · United States
Corrections
ErratumIn
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