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PMID: 19533378 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Silencing of a single gene in tomato plants resistant to Tomato yellow leaf curl virus renders them susceptible to the virus.

Plant molecular biology ·Vol. 71 ·No. 1-2 ·2009-09-00 ·Pages 157-71

Eybishtz A, Peretz Y, Sade D, Akad F, Czosnek H

Abstract

A reverse-genetics approach was applied to identify genes involved in Tomato yellow leaf curl virus (TYLCV) resistance, taking advantage of two tomato inbred lines from the same breeding program-one susceptible (S), one resistant (R-that used Solanum habrochaites as the source of resistance. cDNA libraries from inoculated and non-inoculated R and S plants were compared, postulating that genes preferentially expressed in the R line may be part of the network sustaining resistance to TYLCV. Further, we assumed that silencing genes located at important nodes of the network would lead to collapse of resistance. Approximately 70 different cDNAs representing genes preferentially expressed in R plants were isolated and their genes identified by comparison with public databases. A Permease I-like protein gene encoding a transmembranal transporter was further studied: it was preferentially expressed in R plants and its expression was enhanced several-fold following TYLCV inoculation. Silencing of the Permease gene of R plants using Tobacco rattle virus-induced gene silencing led to loss of resistance, expressed as development of disease symptoms typical of infected susceptible plants and accumulation of large amounts of virus. Silencing of another membrane protein gene preferentially expressed in R plants, Pectin methylesterase, previously shown to be involved in Tobacco mosaic virus translocation, did not lead to collapse of resistance of R plants. Thus, silencing of a single gene can lead to collapse of resistance, but not every gene preferentially expressed in the R line has the same effect, upon silencing, on resistance.

MeSH Terms
Begomovirus/genetics,pathogenicity DNA, Plant/genetics Gene Amplification Gene Silencing Genetic Predisposition to Disease Immunity, Innate/genetics Lycopersicon esculentum/genetics,physiology,virology Membrane Transport Proteins/genetics Plant Diseases/genetics Plant Proteins/genetics Polymorphism, Genetic Signal Transduction
Chemicals
DNA, Plant Membrane Transport Proteins Plant Proteins
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Eybishtz Assaf
The Otto Warburg Minerva Center for Agricultural Biotechnology and the Robert H. Smith Institute of Plant Science and Genetics in Agriculture, Faculty of Agriculture, Food and Environment, The Hebrew University of Jerusalem, Rehovot, Israel.
Peretz Yuval
Sade Dagan
Akad Fouad
Czosnek Henryk
References (49)
49 references, click to expand
  1. A geminivirus replication protein interacts with the retinoblastoma protein through a novel domain to determine symptoms and tissue specificity of infection in plants.
    EMBO J. 2000 Jul 3;19(13):3485-95 PMID: 10880461
  2. Gene networks involved in drought stress response and tolerance.
    J Exp Bot. 2007;58(2):221-7 PMID: 17075077
  3. Genetics of plant virus resistance.
    Annu Rev Phytopathol. 2005;43:581-621 PMID: 16078896
  4. Gene networks: how to put the function in genomics.
    Trends Biotechnol. 2002 Nov;20(11):467-72 PMID: 12413821
  5. Cross talk between signaling pathways in pathogen defense.
    Curr Opin Plant Biol. 2002 Aug;5(4):325-31 PMID: 12179966
  6. Cluster analysis and display of genome-wide expression patterns.
    Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):14863-8 PMID: 9843981
  7. Virus-induced gene silencing in tomato.
    Plant J. 2002 Sep;31(6):777-86 PMID: 12220268
  8. A protein interaction map of Drosophila melanogaster.
    Science. 2003 Dec 5;302(5651):1727-36 PMID: 14605208
  9. The potential of virus-induced gene silencing for speeding up functional characterization of plant genes.
    Genet Mol Res. 2004 Sep 30;3(3):323-41 PMID: 15614725
  10. A network of rice genes associated with stress response and seed development.
    Proc Natl Acad Sci U S A. 2003 Apr 15;100(8):4945-50 PMID: 12684538
  11. VIGS vectors for gene silencing: many targets, many tools.
    Annu Rev Plant Biol. 2004;55:495-519 PMID: 15377229
  12. Gene network analysis in plant development by genomic technologies.
    Int J Dev Biol. 2005;49(5-6):745-59 PMID: 16096979
  13. A NAC domain protein interacts with tomato leaf curl virus replication accessory protein and enhances viral replication.
    Plant Cell. 2005 Jan;17(1):311-25 PMID: 15608335
  14. Expression of stress-response proteins upon whitefly-mediated inoculation of Tomato yellow leaf curl virus in susceptible and resistant tomato plants.
    Mol Plant Microbe Interact. 2007 Nov;20(11):1376-83 PMID: 17977149
  15. A novel function for a ubiquitous plant enzyme pectin methylesterase: the enhancer of RNA silencing.
    FEBS Lett. 2006 Jul 10;580(16):3872-8 PMID: 16797009
  16. The consensus N-myristoylation motif of a geminivirus AC4 protein is required for membrane binding and pathogenicity.
    Mol Plant Microbe Interact. 2007 Apr;20(4):380-91 PMID: 17427808
  17. Crosstalk in plant cell signaling: structure and function of the genetic network.
    Trends Plant Sci. 1999 Dec;4(12):503-507 PMID: 10562736
  18. Pectin methylesterases: cell wall enzymes with important roles in plant physiology.
    Trends Plant Sci. 2001 Sep;6(9):414-9 PMID: 11544130
  19. Signaling in plant-microbe interactions.
    Science. 1997 May 2;276(5313):726-33 PMID: 9115193
  20. Virus-induced disease: altering host physiology one interaction at a time.
    Annu Rev Phytopathol. 2007;45:221-43 PMID: 17417941
  21. Molecular dissection of Tomato leaf curl virus resistance in tomato line TY172 derived from Solanum peruvianum.
    Theor Appl Genet. 2009 Aug;119(3):519-30 PMID: 19455299
  22. Genetic dissection of systemic acquired resistance.
    Curr Opin Plant Biol. 2001 Aug;4(4):309-14 PMID: 11418340
  23. Tomato yellow leaf curl virus: a whitefly-transmitted geminivirus with a single genomic component.
    Virology. 1991 Nov;185(1):151-61 PMID: 1926771
  24. Short interfering RNA accumulation correlates with host recovery in DNA virus-infected hosts, and gene silencing targets specific viral sequences.
    J Virol. 2004 Jul;78(14):7465-77 PMID: 15220420
  25. Structure-function analysis of the presumptive Arabidopsis auxin permease AUX1.
    Plant Cell. 2004 Nov;16(11):3069-83 PMID: 15486104
  26. Receptor tyrosine kinase (RTK) mediated tyrosine phosphor-proteome from Drosophila S2 (ErbB1) cells reveals novel signaling networks.
    PLoS One. 2008 Aug 06;3(8):e2877 PMID: 18682802
  27. Resistance mechanisms to plant viruses: an overview.
    Virus Res. 2003 Apr;92(2):207-12 PMID: 12686431
  28. Reprogramming plant gene expression: a prerequisite to geminivirus DNA replication.
    Mol Plant Pathol. 2004 Mar 1;5(2):149-56 PMID: 20565592
  29. A single gene network accurately predicts phenotypic effects of gene perturbation in Caenorhabditis elegans.
    Nat Genet. 2008 Feb;40(2):181-8 PMID: 18223650
  30. DNA replication and cell cycle in plants: learning from geminiviruses.
    EMBO J. 2000 Mar 1;19(5):792-9 PMID: 10698921
  31. Systemic movement of a tobamovirus requires host cell pectin methylesterase.
    Plant J. 2003 Aug;35(3):386-92 PMID: 12887589
  32. Modification of intracellular membrane structures for virus replication.
    Nat Rev Microbiol. 2008 May;6(5):363-74 PMID: 18414501
  33. Nuclear import and export of plant virus proteins and genomes.
    Mol Plant Pathol. 2006 Mar 1;7(2):131-46 PMID: 20507434
  34. An Arabidopsis gene network based on the graphical Gaussian model.
    Genome Res. 2007 Nov;17(11):1614-25 PMID: 17921353
  35. Proteome survey reveals modularity of the yeast cell machinery.
    Nature. 2006 Mar 30;440(7084):631-6 PMID: 16429126
  36. Interaction between the tobacco mosaic virus movement protein and host cell pectin methylesterases is required for viral cell-to-cell movement.
    EMBO J. 2000 Mar 1;19(5):913-20 PMID: 10698933
  37. Cluster analysis of networks generated through homology: automatic identification of important protein communities involved in cancer metastasis.
    BMC Bioinformatics. 2006 Jan 06;7:2 PMID: 16398927
  38. Toward a saturated linkage map in tomato based on isozymes and random cDNA sequences.
    Genetics. 1986 Apr;112(4):887-98 PMID: 17246322
  39. Conservation and innovation in plant signaling pathways.
    Cell. 2000 Oct 13;103(2):201-9 PMID: 11057894
  40. Genetic networks.
    Plant Physiol. 2005 Jun;138(2):542-4 PMID: 15955909
  41. Mapping and introgression of a tomato yellow leaf curl virus tolerance gene, TY-1.
    Theor Appl Genet. 1994 May;88(2):141-6 PMID: 24185918
  42. Acquisition of tomato yellow leaf curl virus by the whitefly Bemisia tabaci.
    J Gen Virol. 1991 Nov;72 ( Pt 11):2607-14 PMID: 1940856
  43. Efficient virus-induced gene silencing in Arabidopsis.
    Plant Physiol. 2006 Sep;142(1):21-7 PMID: 16815951
  44. Dual interaction of plant PCNA with geminivirus replication accessory protein (Ren) and viral replication protein (Rep).
    Virology. 2003 Aug 1;312(2):381-94 PMID: 12919743
  45. Real-time PCR detection and quantification of vector trichodorid nematodes and Tobacco rattle virus.
    Mol Cell Probes. 2006 Jun-Aug;20(3-4):203-11 PMID: 16563695
  46. Reactive oxygen gene network of plants.
    Trends Plant Sci. 2004 Oct;9(10):490-8 PMID: 15465684
  47. Tomato Breeding Lines Resistant and Tolerant to Tomato Yellow Leaf Curl Virus Issued from Lycopersicon hirsutum.
    Phytopathology. 1998 Sep;88(9):910-4 PMID: 18944868
  48. A novel function for a ubiquitous plant enzyme pectin methylesterase: the host-cell receptor for the tobacco mosaic virus movement protein.
    FEBS Lett. 1999 Nov 19;461(3):223-8 PMID: 10567701
  49. Interaction between a geminivirus replication protein and the plant sumoylation system.
    J Virol. 2004 Mar;78(6):2758-69 PMID: 14990696
Article Info
Journal
Plant molecular biology
Abbr.
Plant Mol Biol
ISSN
1573-5028
Published
2009-09-00
Epub
2009-00-17
Pages
157-71
Language
English
Region
Netherlands
NLM ID
9106343
Subset
IM
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