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Dive into the research topics where Koste A. Yadeta is active.

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Featured researches published by Koste A. Yadeta.


The Plant Cell | 2008

The Cladosporium fulvum Virulence Protein Avr2 Inhibits Host Proteases Required for Basal Defense

H. Peter van Esse; John W. van 't Klooster; Melvin D. Bolton; Koste A. Yadeta; Peter van Baarlen; Jacques Vervoort; Pierre J. G. M. de Wit; Bart P. H. J. Thomma

Cladosporium fulvum (syn. Passalora fulva) is a biotrophic fungal pathogen that causes leaf mold of tomato (Solanum lycopersicum). During growth in the apoplast, the fungus establishes disease by secreting effector proteins, 10 of which have been characterized. We have previously shown that the Avr2 effector interacts with the apoplastic tomato Cys protease Rcr3, which is required for Cf-2–mediated immunity. We now show that Avr2 is a genuine virulence factor of C. fulvum. Heterologous expression of Avr2 in Arabidopsis thaliana causes enhanced susceptibility toward extracellular fungal pathogens, including Botrytis cinerea and Verticillium dahliae, and microarray analysis showed that Avr2 expression triggers a global transcriptome reflecting pathogen challenge. Cys protease activity profiling showed that Avr2 inhibits multiple extracellular Arabidopsis Cys proteases. In tomato, Avr2 expression caused enhanced susceptibility toward Avr2-defective C. fulvum strains and also toward B. cinerea and V. dahliae. Cys protease activity profiling in tomato revealed that, in this plant also, Avr2 inhibits multiple extracellular Cys proteases, including Rcr3 and its close relative Pip1. Finally, silencing of Avr2 significantly compromised C. fulvum virulence on tomato. We conclude that Avr2 is a genuine virulence factor of C. fulvum that inhibits several Cys proteases required for plant basal defense.


Genome Research | 2013

Extensive chromosomal reshuffling drives evolution of virulence in an asexual pathogen

R. de Jonge; Melvin D. Bolton; Anja Kombrink; G.C.M. van den Berg; Koste A. Yadeta; Bart P. H. J. Thomma

Sexual recombination drives genetic diversity in eukaryotic genomes and fosters adaptation to novel environmental challenges. Although strictly asexual microorganisms are often considered as evolutionary dead ends, they comprise many devastating plant pathogens. Presently, it remains unknown how such asexual pathogens generate the genetic variation that is required for quick adaptation and evolution in the arms race with their hosts. Here, we show that extensive chromosomal rearrangements in the strictly asexual plant pathogenic fungus Verticillium dahliae establish highly dynamic lineage-specific (LS) genomic regions that act as a source for genetic variation to mediate aggressiveness. We show that such LS regions are greatly enriched for in planta-expressed effector genes encoding secreted proteins that enable host colonization. The LS regions occur at the flanks of chromosomal breakpoints and are enriched for retrotransposons and other repetitive sequence elements. Our results suggest that asexual pathogens may evolve by prompting chromosomal rearrangements, enabling rapid development of novel effector genes. Likely, chromosomal reshuffling can act as a general mechanism for adaptation in asexually propagating organisms.


Frontiers in Plant Science | 2013

The xylem as battleground for plant hosts and vascular wilt pathogens

Koste A. Yadeta; Bart P. H. J. Thomma

Vascular wilts are among the most destructive plant diseases that occur in annual crops as well as in woody perennials. These diseases are generally caused by soil-borne bacteria, fungi, and oomycetes that infect through the roots and enter the water-conducting xylem vessels where they proliferate and obstruct the transportation of water and minerals. As a consequence, leaves wilt and die, which may lead to impairment of the whole plant and eventually to death of the plant. Cultural, chemical, and biological measures to control this group of plant pathogens are generally ineffective, and the most effective control strategy is the use of genetic resistance. Owing to the fact that vascular wilt pathogens live deep in the interior of their host plants, studies into the biology of vascular pathogens are complicated. However, to design novel strategies to combat vascular wilt diseases, understanding the (molecular) biology of vascular pathogens and the molecular mechanisms underlying plant defense against these pathogens is crucial. In this review, we discuss the current knowledge on interactions of vascular wilt pathogens with their host plants, with emphasis on host defense responses against this group of pathogens.


Plant Journal | 2013

Arabidopsis wat1 (walls are thin1)-mediated resistance to the bacterial vascular pathogen, Ralstonia solanacearum, is accompanied by cross-regulation of salicylic acid and tryptophan metabolism

Nicolas Denancé; Philippe Ranocha; Nicolas Oria; Xavier Barlet; Marie-Pierre Rivière; Koste A. Yadeta; Laurent Hoffmann; François Perreau; Gilles Clément; Alessandra Maia-Grondard; Grardy C. M. van den Berg; Bruno Savelli; Sylvie Fournier; Yann Aubert; Sandra Pelletier; Bart P. H. J. Thomma; Antonio Molina; Lise Jouanin; Yves Marco; Deborah Goffner

Inactivation of Arabidopsis WAT1 (Walls Are Thin1), a gene required for secondary cell-wall deposition, conferred broad-spectrum resistance to vascular pathogens, including the bacteria Ralstonia solanacearum and Xanthomonas campestris pv. campestris, and the fungi Verticillium dahliae and Verticillium albo-atrum. Introduction of NahG, the bacterial salicylic acid (SA)-degrading salicylate hydroxylase gene, into the wat1 mutant restored full susceptibility to both R. solanacearum and X. campestris pv. campestris. Moreover, SA content was constitutively higher in wat1 roots, further supporting a role for SA in wat1-mediated resistance to vascular pathogens. By combining transcriptomic and metabolomic data, we demonstrated a general repression of indole metabolism in wat1-1 roots as shown by constitutive down-regulation of several genes encoding proteins of the indole glucosinolate biosynthetic pathway and reduced amounts of tryptophan (Trp), indole-3-acetic acid and neoglucobrassicin, the major form of indole glucosinolate in roots. Furthermore, the susceptibility of the wat1 mutant to R. solanacearum was partially restored when crossed with either the trp5 mutant, an over-accumulator of Trp, or Pro35S:AFB1-myc, in which indole-3-acetic acid signaling is constitutively activated. Our original hypothesis placed cell-wall modifications at the heart of the wat1 resistance phenotype. However, the results presented here suggest a mechanism involving root-localized metabolic channeling away from indole metabolites to SA as a central feature of wat1 resistance to R. solanacearum.


Molecular Plant-microbe Interactions | 2011

The Arabidopsis thaliana DNA-Binding Protein AHL19 Mediates Verticillium Wilt Resistance

Koste A. Yadeta; Mathieu Hanemian; Patrick Smit; Jelle Hiemstra; Andy Pereira; Yves Marco; Bart P. H. J. Thomma

Verticillium spp. are destructive soilborne fungal pathogens that cause vascular wilt diseases in a wide range of plant species. Verticillium wilts are particularly notorious, and genetic resistance in crop plants is the most favorable means of disease control. In a gain-of-function screen using an activation-tagged Arabidopsis mutant collection, we identified four mutants, A1 to A4, which displayed enhanced resistance toward the vascular wilt species Verticillium dahliae, V. albo-atrum and V. longisporum but not to Fusarium oxysporum f. sp. raphani. Further testing revealed that mutant A2 displayed enhanced Ralstonia solanacearum resistance, while mutants A1 and A3 were more susceptible toward Pseudomonas syringae pv. tomato. Identification of the activation tag insertion site in the A1 mutant revealed an insertion in close proximity to the gene encoding AHL19, which was constitutively expressed in the mutant. AHL19 knock-out alleles were found to display enhanced Verticillium susceptibility whereas overexpression of AHL19 resulted in enhanced Verticillium resistance, showing that AHL19 acts as a positive regulator of plant defense.


PLOS ONE | 2014

The Brassicaceae-specific EWR1 gene provides resistance to vascular wilt pathogens.

Koste A. Yadeta; D.J. Valkenburg; Mathieu Hanemian; Yves Marco; Bart P. H. J. Thomma

Soil-borne vascular wilt diseases caused by Verticillium spp. are among the most destructive diseases worldwide in a wide range of plant species. The most effective means of controlling Verticillium wilt diseases is the use of genetic resistance. We have previously reported the identification of four activation-tagged Arabidopsis mutants which showed enhanced resistance to Verticillium wilt. Among these, one mutant also showed enhanced resistance to Ralstonia solanacearum, a bacterial vascular wilt pathogen. Cloning of the activation tag revealed an insertion upstream of gene At3g13437, which we designated as EWR1 (for Enhancer of vascular Wilt Resistance 1) that encodes a putatively secreted protein of unknown function. The search for homologs of Arabidopsis EWR1 (AtEWR1) in public databases only identified homologs within the Brassicaceae family. We subsequently cloned the EWR1 homolog from Brassica oleracea (BoEWR1) and show that over-expression in Arabidopsis results in V. dahliae resistance. Moreover, over-expression of AtEWR1 and BoEWR1 in N. benthamiana, a member of the Solanaceae family, results in V. dahliae resistance, suggesting that EWR1 homologs can be used to engineer Verticillium wilt resistance in non-Brassicaceae crops as well.


New Phytologist | 2016

Arabidopsis CLAVATA1 and CLAVATA2 receptors contribute to Ralstonia solanacearum pathogenicity through a miR169-dependent pathway

Mathieu Hanemian; Xavier Barlet; Céline Sorin; Koste A. Yadeta; Harald Keller; Bruno Favery; Rüdiger Simon; Bart P. H. J. Thomma; Caroline Hartmann; Martin Crespi; Yves Marco; Dominique Tremousaygue; Laurent Deslandes


Archive | 2017

Plant resistance gene

Bart Pierre Hélène Joseph Thomma; Koste A. Yadeta


Archive | 2013

Nouveau gène de résistance pour plantes

Bart Pierre Hélène Joseph Thomma; Koste A. Yadeta


Archive | 2013

New plant resistance gene

Bart Pierre Hélène Joseph Thomma; Koste A. Yadeta

Collaboration


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Bart P. H. J. Thomma

Wageningen University and Research Centre

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R. de Jonge

Wageningen University and Research Centre

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Yves Marco

Centre national de la recherche scientifique

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G.C.M. van den Berg

Wageningen University and Research Centre

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Mathieu Hanemian

Institut national de la recherche agronomique

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Xavier Barlet

Centre national de la recherche scientifique

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Anja Kombrink

Wageningen University and Research Centre

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Emilie F. Fradin

Wageningen University and Research Centre

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U. Ellendorff

Wageningen University and Research Centre

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Melvin D. Bolton

United States Department of Agriculture

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