Genome Res. 13:1675-1685, 2003
©2003 by Cold Spring Harbor Laboratory Press; ISSN 1088-9051/03 $5.00
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.AF424638AF424690.]

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