Genome Research Econo tag

Home Help [Feedback] [For Subscribers] [Archive] [Search] [Contents]
 QUICK SEARCH:   [advanced]


     


Genome Res. 13:1675-1685, 2003
©2003 by Cold Spring Harbor Laboratory Press; ISSN 1088-9051/03 $5.00
This Article
Right arrow Full Text
Right arrow Full Text (PDF)
Right arrow Supplemental Research Data
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Right arrow Citation Map
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Torto, T. A.
Right arrow Articles by Kamoun, S.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Torto, T. A.
Right arrow Articles by Kamoun, S.
Social Bookmarking
 Add to CiteULike   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati  
What's this?

Letter

EST Mining and Functional Expression Assays Identify Extracellular Effector Proteins From the Plant Pathogen Phytophthora

Trudy A. Torto1, Shuang Li2, Allison Styer1, Edgar Huitema1, Antonino Testa1, Neil A.R. Gow2, Pieter van West2 and Sophien Kamoun1,3

1 Department of Plant Pathology, The Ohio State University, Ohio Agricultural Research and Development Center, Wooster, Ohio 44691, USA 2 Department of Molecular and Cell Biology, Institute of Medical Sciences, Foresthill AB25 2ZD, Scotland, UK

Plant pathogenic microbes have the remarkable ability to manipulate biochemical, physiological, and morphological processes in their host plants.These manipulations are achieved through a diverse array of effector molecules that can either promote infection or trigger defense responses. We describe a general functional genomics approach aimed at identifying extracellular effector proteins from plant pathogenic microorganisms by combining data mining of expressed sequence tags (ESTs) with virus-based high-throughput functional expression assays in plants. PexFinder, an algorithm for automated identification of extracellular proteins from EST data sets, was developed and applied to 2147 ESTs from the oomycete plant pathogen Phytophthora infestans. The program identified 261 ESTs (12.2%) corresponding to a set of 142 nonredundant Pex (Phytophthora extracellular protein) cDNAs. Of these, 78 (55%) Pex cDNAs were novel with no significant matches in public databases. Validation of PexFinder was performed using proteomic analysis of secreted protein of P. infestans. To identify which of the Pex cDNAs encode effector proteins that manipulate plant processes, high-throughput functional expression assays in plants were performed on 63 of the identified cDNAs using an Agrobacterium tumefaciens binary vector carrying the potato virus X (PVX) genome. This led to the discovery of two novel necrosis-inducing cDNAs, crn1 and crn2, encoding extracellular proteins that belong to a large and complex protein family in Phytophthora. Further characterization of the crn genes indicated that they are both expressed in P. infestans during colonization of the host plant tomato and that crn2 induced defense-response genes in tomato. Our results indicate that combining data mining using PexFinder with PVX-based functional assays can facilitate the discovery of novel pathogen effector proteins. In principle, this strategy can be applied to a variety of eukaryotic plant pathogens, including oomycetes, fungi, and nematodes.


Article and publication are at http://www.genome.org/cgi/doi/10.1101/gr.910003.

3 Corresponding author.
E-MAIL kamoun.1{at}osu.edu; FAX (330)263-3841.

[Supplemental material is available online at www.genome.org and http://www.oardc.ohio-state.edu/phytophthora/supp.htm. The sequence data from this study have been submitted to GenBank under accession nos.AF424638–AF424690.]


Add to CiteULike CiteULike   Add to Connotea Connotea   Add to Del.icio.us Del.icio.us   Add to Digg Digg   Add to Reddit Reddit   Add to Technorati Technorati    What's this?


This article has been cited by other articles:


Home page
MicrobiologyHome page
J. Kleemann, H. Takahara, K. Stuber, and R. O'Connell
Identification of soluble secreted proteins from appressoria of Colletotrichum higginsianum by analysis of expressed sequence tags
Microbiology, April 1, 2008; 154(4): 1204 - 1217.
[Abstract] [Full Text] [PDF]


Home page
Plant CellHome page
J. Win, W. Morgan, J. Bos, K. V. Krasileva, L. M. Cano, A. Chaparro-Garcia, R. Ammar, B. J. Staskawicz, and S. Kamoun
Adaptive Evolution Has Targeted the C-Terminal Domain of the RXLR Effectors of Plant Pathogenic Oomycetes
PLANT CELL, August 1, 2007; 19(8): 2349 - 2369.
[Abstract] [Full Text] [PDF]


Home page
MicrobiologyHome page
A. O. Avrova, S. C. Whisson, L. Pritchard, E. Venter, S. De Luca, I. Hein, and P. R. J. Birch
A novel non-protein-coding infection-specific gene family is clustered throughout the genome of Phytophthora infestans
Microbiology, March 1, 2007; 153(3): 747 - 759.
[Abstract] [Full Text] [PDF]


Home page
Plant Physiol.Home page
M. Tian, J. Win, J. Song, R. van der Hoorn, E. van der Knaap, and S. Kamoun
A Phytophthora infestans Cystatin-Like Protein Targets a Novel Tomato Papain-Like Apoplastic Protease
Plant Physiology, January 1, 2007; 143(1): 364 - 377.
[Abstract] [Full Text] [PDF]


Home page
ScienceHome page
B. M. Tyler, S. Tripathy, X. Zhang, P. Dehal, R. H. Y. Jiang, A. Aerts, F. D. Arredondo, L. Baxter, D. Bensasson, J. L. Beynon, et al.
Phytophthora genome sequences uncover evolutionary origins and mechanisms of pathogenesis.
Science, September 1, 2006; 313(5791): 1261 - 1266.
[Abstract] [Full Text] [PDF]


Home page
Mol Biol EvolHome page
R. H. Y. Jiang, B. M. Tyler, S. C. Whisson, A. R. Hardham, and F. Govers
Ancient Origin of Elicitin Gene Clusters in Phytophthora Genomes
Mol. Biol. Evol., February 1, 2006; 23(2): 338 - 351.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
K. Gajendran, M. D. Gonzales, A. Farmer, E. Archuleta, J. Win, M. E. Waugh, and S. Kamoun
Phytophthora functional genomics database (PFGD): functional genomics of phytophthora-plant interactions
Nucleic Acids Res., January 1, 2006; 34(suppl_1): D465 - D470.
[Abstract] [Full Text] [PDF]


Home page
Plant Physiol.Home page
M. Tian, B. Benedetti, and S. Kamoun
A Second Kazal-Like Protease Inhibitor from Phytophthora infestans Inhibits and Interacts with the Apoplastic Pathogenesis-Related Protease P69B of Tomato
Plant Physiology, July 1, 2005; 138(3): 1785 - 1793.
[Abstract] [Full Text] [PDF]


Home page
Plant CellHome page
A. P. Rehmany, A. Gordon, L. E. Rose, R. L. Allen, M. R. Armstrong, S. C. Whisson, S. Kamoun, B. M. Tyler, P. R.J. Birch, and J. L. Beynon
Differential Recognition of Highly Divergent Downy Mildew Avirulence Gene Alleles by RPP1 Resistance Genes from Two Arabidopsis Lines
PLANT CELL, June 1, 2005; 17(6): 1839 - 1850.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
M. R. Armstrong, S. C. Whisson, L. Pritchard, J. I. B. Bos, E. Venter, A. O. Avrova, A. P. Rehmany, U. Bohme, K. Brooks, I. Cherevach, et al.
An ancestral oomycete locus contains late blight avirulence gene Avr3a, encoding a protein that is recognized in the host cytoplasm
PNAS, May 24, 2005; 102(21): 7766 - 7771.
[Abstract] [Full Text] [PDF]


Home page
Mol Biol EvolHome page
Z. Liu, J. I. B. Bos, M. Armstrong, S. C. Whisson, L. da Cunha, T. Torto-Alalibo, J. Win, A. O. Avrova, F. Wright, P. R. J. Birch, et al.
Patterns of Diversifying Selection in the Phytotoxin-like scr74 Gene Family of Phytophthora infestans
Mol. Biol. Evol., March 1, 2005; 22(3): 659 - 672.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
M. Tian, E. Huitema, L. da Cunha, T. Torto-Alalibo, and S. Kamoun
A Kazal-like Extracellular Serine Protease Inhibitor from Phytophthora infestans Targets the Tomato Pathogenesis-related Protease P69B
J. Biol. Chem., June 18, 2004; 279(25): 26370 - 26377.
[Abstract] [Full Text] [PDF]




Home Help [Feedback] [For Subscribers] [Archive] [Search] [Contents]
Genes Dev. Learn. Mem.
Protein Science RNA Genome Res.
Copyright © 2003 by Cold Spring Harbor Laboratory Press.