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Effector target-guided engineering of an integrated domain expands the disease resistance profile of a rice NLR immune receptor.
Maidment, Josephine H R; Shimizu, Motoki; Bentham, Adam R; Vera, Sham; Franceschetti, Marina; Longya, Apinya; Stevenson, Clare E M; De la Concepcion, Juan Carlos; Bialas, Aleksandra; Kamoun, Sophien; Terauchi, Ryohei; Banfield, Mark J.
Afiliação
  • Maidment JHR; Department of Biological Chemistry, John Innes Centre, Norwich, United Kingdom.
  • Shimizu M; Division of Genomics and Breeding, Iwate Biotechnology Research Center, Iwate, Japan.
  • Bentham AR; Department of Biological Chemistry, John Innes Centre, Norwich, United Kingdom.
  • Vera S; Department of Biological Chemistry, John Innes Centre, Norwich, United Kingdom.
  • Franceschetti M; Department of Biological Chemistry, John Innes Centre, Norwich, United Kingdom.
  • Longya A; Department of Biological Chemistry, John Innes Centre, Norwich, United Kingdom.
  • Stevenson CEM; Department of Biological Chemistry, John Innes Centre, Norwich, United Kingdom.
  • De la Concepcion JC; Department of Biological Chemistry, John Innes Centre, Norwich, United Kingdom.
  • Bialas A; The Sainsbury Laboratory, University of East Anglia, Norwich Research Park, Norwich, United Kingdom.
  • Kamoun S; The Sainsbury Laboratory, University of East Anglia, Norwich Research Park, Norwich, United Kingdom.
  • Terauchi R; Division of Genomics and Breeding, Iwate Biotechnology Research Center, Iwate, Japan.
  • Banfield MJ; Laboratory of Crop Evolution, Graduate School of Agriculture, Kyoto University, Kyoto, Japan.
Elife ; 122023 05 18.
Article em En | MEDLINE | ID: mdl-37199729
ABSTRACT
A subset of plant intracellular NLR immune receptors detect effector proteins, secreted by phytopathogens to promote infection, through unconventional integrated domains which resemble the effector's host targets. Direct binding of effectors to these integrated domains activates plant defenses. The rice NLR receptor Pik-1 binds the Magnaporthe oryzae effector AVR-Pik through an integrated heavy metal-associated (HMA) domain. However, the stealthy alleles AVR-PikC and AVR-PikF avoid interaction with Pik-HMA and evade host defenses. Here, we exploited knowledge of the biochemical interactions between AVR-Pik and its host target, OsHIPP19, to engineer novel Pik-1 variants that respond to AVR-PikC/F. First, we exchanged the HMA domain of Pikp-1 for OsHIPP19-HMA, demonstrating that effector targets can be incorporated into NLR receptors to provide novel recognition profiles. Second, we used the structure of OsHIPP19-HMA to guide the mutagenesis of Pikp-HMA to expand its recognition profile. We demonstrate that the extended recognition profiles of engineered Pikp-1 variants correlate with effector binding in planta and in vitro, and with the gain of new contacts across the effector/HMA interface. Crucially, transgenic rice producing the engineered Pikp-1 variants was resistant to blast fungus isolates carrying AVR-PikC or AVR-PikF. These results demonstrate that effector target-guided engineering of NLR receptors can provide new-to-nature disease resistance in crops.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Oryza / Magnaporthe Idioma: En Revista: Elife Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Reino Unido

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Oryza / Magnaporthe Idioma: En Revista: Elife Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Reino Unido