Serveur d'exploration Phytophthora

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Elicitin recognition confers enhanced resistance to Phytophthora infestans in potato.

Identifieur interne : 000E78 ( Main/Exploration ); précédent : 000E77; suivant : 000E79

Elicitin recognition confers enhanced resistance to Phytophthora infestans in potato.

Auteurs : Juan Du [Pays-Bas, République populaire de Chine] ; Estelle Verzaux [Pays-Bas] ; Angela Chaparro-Garcia [Royaume-Uni] ; Gerard Bijsterbosch [Pays-Bas] ; L C Paul Keizer [Pays-Bas] ; Ji Zhou [Royaume-Uni] ; Thomas W H. Liebrand [Pays-Bas] ; Conghua Xie [République populaire de Chine] ; Francine Govers [Pays-Bas] ; Silke Robatzek [Royaume-Uni] ; Edwin A G. Van Der Vossen [Pays-Bas] ; Evert Jacobsen [Pays-Bas] ; Richard G F. Visser [Pays-Bas] ; Sophien Kamoun [Royaume-Uni] ; Vivianne G A A. Vleeshouwers [Pays-Bas]

Source :

RBID : pubmed:27247034

Descripteurs français

English descriptors

Abstract

Potato late blight, caused by the destructive Irish famine pathogen Phytophthora infestans, is a major threat to global food security(1,2). All late blight resistance genes identified to date belong to the coiled-coil, nucleotide-binding, leucine-rich repeat class of intracellular immune receptors(3). However, virulent races of the pathogen quickly evolved to evade recognition by these cytoplasmic immune receptors(4). Here we demonstrate that the receptor-like protein ELR (elicitin response) from the wild potato Solanum microdontum mediates extracellular recognition of the elicitin domain, a molecular pattern that is conserved in Phytophthora species. ELR associates with the immune co-receptor BAK1/SERK3 and mediates broad-spectrum recognition of elicitin proteins from several Phytophthora species, including four diverse elicitins from P. infestans. Transfer of ELR into cultivated potato resulted in enhanced resistance to P. infestans. Pyramiding cell surface pattern recognition receptors with intracellular immune receptors could maximize the potential of generating a broader and potentially more durable resistance to this devastating plant pathogen.

DOI: 10.1038/nplants.2015.34
PubMed: 27247034


Affiliations:


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Le document en format XML

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<name sortKey="Vleeshouwers, Vivianne G A A" sort="Vleeshouwers, Vivianne G A A" uniqKey="Vleeshouwers V" first="Vivianne G A A" last="Vleeshouwers">Vivianne G A A. Vleeshouwers</name>
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<name sortKey="Chaparro Garcia, Angela" sort="Chaparro Garcia, Angela" uniqKey="Chaparro Garcia A" first="Angela" last="Chaparro-Garcia">Angela Chaparro-Garcia</name>
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<name sortKey="Bijsterbosch, Gerard" sort="Bijsterbosch, Gerard" uniqKey="Bijsterbosch G" first="Gerard" last="Bijsterbosch">Gerard Bijsterbosch</name>
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<name sortKey="Keizer, L C Paul" sort="Keizer, L C Paul" uniqKey="Keizer L" first="L C Paul" last="Keizer">L C Paul Keizer</name>
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<name sortKey="Zhou, Ji" sort="Zhou, Ji" uniqKey="Zhou J" first="Ji" last="Zhou">Ji Zhou</name>
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<name sortKey="Robatzek, Silke" sort="Robatzek, Silke" uniqKey="Robatzek S" first="Silke" last="Robatzek">Silke Robatzek</name>
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<name sortKey="Van Der Vossen, Edwin A G" sort="Van Der Vossen, Edwin A G" uniqKey="Van Der Vossen E" first="Edwin A G" last="Van Der Vossen">Edwin A G. Van Der Vossen</name>
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<name sortKey="Jacobsen, Evert" sort="Jacobsen, Evert" uniqKey="Jacobsen E" first="Evert" last="Jacobsen">Evert Jacobsen</name>
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<wicri:regionArea>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB</wicri:regionArea>
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<name sortKey="Visser, Richard G F" sort="Visser, Richard G F" uniqKey="Visser R" first="Richard G F" last="Visser">Richard G F. Visser</name>
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<nlm:affiliation>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB, The Netherlands.</nlm:affiliation>
<country xml:lang="fr">Pays-Bas</country>
<wicri:regionArea>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB</wicri:regionArea>
<wicri:noRegion>Wageningen 6708 PB</wicri:noRegion>
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<name sortKey="Kamoun, Sophien" sort="Kamoun, Sophien" uniqKey="Kamoun S" first="Sophien" last="Kamoun">Sophien Kamoun</name>
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<nlm:affiliation>The Sainsbury Laboratory, Norwich Research Park, Norwich NR4 7UH, UK.</nlm:affiliation>
<country xml:lang="fr">Royaume-Uni</country>
<wicri:regionArea>The Sainsbury Laboratory, Norwich Research Park, Norwich NR4 7UH</wicri:regionArea>
<wicri:noRegion>Norwich NR4 7UH</wicri:noRegion>
</affiliation>
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<author>
<name sortKey="Vleeshouwers, Vivianne G A A" sort="Vleeshouwers, Vivianne G A A" uniqKey="Vleeshouwers V" first="Vivianne G A A" last="Vleeshouwers">Vivianne G A A. Vleeshouwers</name>
<affiliation wicri:level="1">
<nlm:affiliation>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB, The Netherlands.</nlm:affiliation>
<country xml:lang="fr">Pays-Bas</country>
<wicri:regionArea>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB</wicri:regionArea>
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<series>
<title level="j">Nature plants</title>
<idno type="eISSN">2055-0278</idno>
<imprint>
<date when="2015" type="published">2015</date>
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<keywords scheme="KwdEn" xml:lang="en">
<term>Disease Resistance (MeSH)</term>
<term>Gene Expression Regulation, Plant (MeSH)</term>
<term>Host-Pathogen Interactions (MeSH)</term>
<term>Pathogen-Associated Molecular Pattern Molecules (MeSH)</term>
<term>Phytophthora infestans (pathogenicity)</term>
<term>Plant Diseases (microbiology)</term>
<term>Plant Proteins (genetics)</term>
<term>Plant Proteins (immunology)</term>
<term>Plant Proteins (metabolism)</term>
<term>Plants, Genetically Modified (MeSH)</term>
<term>Proteins (metabolism)</term>
<term>Solanum tuberosum (genetics)</term>
<term>Solanum tuberosum (metabolism)</term>
<term>Solanum tuberosum (microbiology)</term>
</keywords>
<keywords scheme="KwdFr" xml:lang="fr">
<term>Interactions hôte-pathogène (MeSH)</term>
<term>Maladies des plantes (microbiologie)</term>
<term>Molécules contenant des motifs associés aux pathogènes (MeSH)</term>
<term>Phytophthora infestans (pathogénicité)</term>
<term>Protéines (métabolisme)</term>
<term>Protéines végétales (génétique)</term>
<term>Protéines végétales (immunologie)</term>
<term>Protéines végétales (métabolisme)</term>
<term>Régulation de l'expression des gènes végétaux (MeSH)</term>
<term>Résistance à la maladie (MeSH)</term>
<term>Solanum tuberosum (génétique)</term>
<term>Solanum tuberosum (microbiologie)</term>
<term>Solanum tuberosum (métabolisme)</term>
<term>Végétaux génétiquement modifiés (MeSH)</term>
</keywords>
<keywords scheme="MESH" type="chemical" qualifier="genetics" xml:lang="en">
<term>Plant Proteins</term>
</keywords>
<keywords scheme="MESH" type="chemical" qualifier="immunology" xml:lang="en">
<term>Plant Proteins</term>
</keywords>
<keywords scheme="MESH" type="chemical" qualifier="metabolism" xml:lang="en">
<term>Plant Proteins</term>
<term>Proteins</term>
</keywords>
<keywords scheme="MESH" type="chemical" xml:lang="en">
<term>Pathogen-Associated Molecular Pattern Molecules</term>
</keywords>
<keywords scheme="MESH" qualifier="genetics" xml:lang="en">
<term>Solanum tuberosum</term>
</keywords>
<keywords scheme="MESH" qualifier="génétique" xml:lang="fr">
<term>Protéines végétales</term>
<term>Solanum tuberosum</term>
</keywords>
<keywords scheme="MESH" qualifier="immunologie" xml:lang="fr">
<term>Protéines végétales</term>
</keywords>
<keywords scheme="MESH" qualifier="metabolism" xml:lang="en">
<term>Solanum tuberosum</term>
</keywords>
<keywords scheme="MESH" qualifier="microbiologie" xml:lang="fr">
<term>Maladies des plantes</term>
<term>Solanum tuberosum</term>
</keywords>
<keywords scheme="MESH" qualifier="microbiology" xml:lang="en">
<term>Plant Diseases</term>
<term>Solanum tuberosum</term>
</keywords>
<keywords scheme="MESH" qualifier="métabolisme" xml:lang="fr">
<term>Protéines</term>
<term>Protéines végétales</term>
<term>Solanum tuberosum</term>
</keywords>
<keywords scheme="MESH" qualifier="pathogenicity" xml:lang="en">
<term>Phytophthora infestans</term>
</keywords>
<keywords scheme="MESH" qualifier="pathogénicité" xml:lang="fr">
<term>Phytophthora infestans</term>
</keywords>
<keywords scheme="MESH" xml:lang="en">
<term>Disease Resistance</term>
<term>Gene Expression Regulation, Plant</term>
<term>Host-Pathogen Interactions</term>
<term>Plants, Genetically Modified</term>
</keywords>
<keywords scheme="MESH" xml:lang="fr">
<term>Interactions hôte-pathogène</term>
<term>Molécules contenant des motifs associés aux pathogènes</term>
<term>Régulation de l'expression des gènes végétaux</term>
<term>Résistance à la maladie</term>
<term>Végétaux génétiquement modifiés</term>
</keywords>
</textClass>
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<front>
<div type="abstract" xml:lang="en">Potato late blight, caused by the destructive Irish famine pathogen Phytophthora infestans, is a major threat to global food security(1,2). All late blight resistance genes identified to date belong to the coiled-coil, nucleotide-binding, leucine-rich repeat class of intracellular immune receptors(3). However, virulent races of the pathogen quickly evolved to evade recognition by these cytoplasmic immune receptors(4). Here we demonstrate that the receptor-like protein ELR (elicitin response) from the wild potato Solanum microdontum mediates extracellular recognition of the elicitin domain, a molecular pattern that is conserved in Phytophthora species. ELR associates with the immune co-receptor BAK1/SERK3 and mediates broad-spectrum recognition of elicitin proteins from several Phytophthora species, including four diverse elicitins from P. infestans. Transfer of ELR into cultivated potato resulted in enhanced resistance to P. infestans. Pyramiding cell surface pattern recognition receptors with intracellular immune receptors could maximize the potential of generating a broader and potentially more durable resistance to this devastating plant pathogen. </div>
</front>
</TEI>
<pubmed>
<MedlineCitation Status="MEDLINE" Owner="NLM">
<PMID Version="1">27247034</PMID>
<DateCompleted>
<Year>2017</Year>
<Month>12</Month>
<Day>20</Day>
</DateCompleted>
<DateRevised>
<Year>2017</Year>
<Month>12</Month>
<Day>20</Day>
</DateRevised>
<Article PubModel="Electronic">
<Journal>
<ISSN IssnType="Electronic">2055-0278</ISSN>
<JournalIssue CitedMedium="Internet">
<Volume>1</Volume>
<Issue>4</Issue>
<PubDate>
<Year>2015</Year>
<Month>Mar</Month>
<Day>30</Day>
</PubDate>
</JournalIssue>
<Title>Nature plants</Title>
<ISOAbbreviation>Nat Plants</ISOAbbreviation>
</Journal>
<ArticleTitle>Elicitin recognition confers enhanced resistance to Phytophthora infestans in potato.</ArticleTitle>
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<Abstract>
<AbstractText>Potato late blight, caused by the destructive Irish famine pathogen Phytophthora infestans, is a major threat to global food security(1,2). All late blight resistance genes identified to date belong to the coiled-coil, nucleotide-binding, leucine-rich repeat class of intracellular immune receptors(3). However, virulent races of the pathogen quickly evolved to evade recognition by these cytoplasmic immune receptors(4). Here we demonstrate that the receptor-like protein ELR (elicitin response) from the wild potato Solanum microdontum mediates extracellular recognition of the elicitin domain, a molecular pattern that is conserved in Phytophthora species. ELR associates with the immune co-receptor BAK1/SERK3 and mediates broad-spectrum recognition of elicitin proteins from several Phytophthora species, including four diverse elicitins from P. infestans. Transfer of ELR into cultivated potato resulted in enhanced resistance to P. infestans. Pyramiding cell surface pattern recognition receptors with intracellular immune receptors could maximize the potential of generating a broader and potentially more durable resistance to this devastating plant pathogen. </AbstractText>
</Abstract>
<AuthorList CompleteYN="Y">
<Author ValidYN="Y">
<LastName>Du</LastName>
<ForeName>Juan</ForeName>
<Initials>J</Initials>
<AffiliationInfo>
<Affiliation>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB, The Netherlands.</Affiliation>
</AffiliationInfo>
<AffiliationInfo>
<Affiliation>Key Laboratory of Horticultural Plant Biology, Ministry of Education National Center for Vegetable Improvement (Central China); Potato Engineering and Technology Research Center of Hubei Province, Huazhong Agricultural University, Wuhan, Hubei 430070, China.</Affiliation>
</AffiliationInfo>
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<ForeName>Estelle</ForeName>
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<Affiliation>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB, The Netherlands.</Affiliation>
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<LastName>Chaparro-Garcia</LastName>
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<Affiliation>The Sainsbury Laboratory, Norwich Research Park, Norwich NR4 7UH, UK.</Affiliation>
</AffiliationInfo>
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<ForeName>Gerard</ForeName>
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<Affiliation>Wageningen UR Plant Breeding, Wageningen University and Research Centre, Droevendaalsesteeg 1, Wageningen 6708 PB, The Netherlands.</Affiliation>
</AffiliationInfo>
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<LastName>Keizer</LastName>
<ForeName>L C Paul</ForeName>
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</AffiliationInfo>
</Author>
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<LastName>Zhou</LastName>
<ForeName>Ji</ForeName>
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<LastName>Liebrand</LastName>
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<Affiliation>Laboratory of Phytopathology, Wageningen University, Droevendaalsesteeg 1, Wageningen 6708 PB, The Netherlands.</Affiliation>
</AffiliationInfo>
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<Affiliation>Key Laboratory of Horticultural Plant Biology, Ministry of Education National Center for Vegetable Improvement (Central China); Potato Engineering and Technology Research Center of Hubei Province, Huazhong Agricultural University, Wuhan, Hubei 430070, China.</Affiliation>
</AffiliationInfo>
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</AffiliationInfo>
</Author>
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<LastName>Robatzek</LastName>
<ForeName>Silke</ForeName>
<Initials>S</Initials>
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</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>van der Vossen</LastName>
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<LastName>Jacobsen</LastName>
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<LastName>Visser</LastName>
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</AffiliationInfo>
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<LastName>Kamoun</LastName>
<ForeName>Sophien</ForeName>
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