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      Structural analysis of Pseudomonas syringae AvrPtoB bound to host BAK1 reveals two similar kinase-interacting domains in a type III Effector.

      Cell Host & Microbe
      Amino Acid Sequence, Bacterial Proteins, chemistry, genetics, metabolism, Lycopersicon esculentum, enzymology, microbiology, Molecular Sequence Data, Plant Diseases, Plant Proteins, Protein Binding, Protein Structure, Tertiary, Protein-Serine-Threonine Kinases, Pseudomonas syringae, pathogenicity, Virulence

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          Abstract

          To infect plants, Pseudomonas syringae pv. tomato delivers ~30 type III effector proteins into host cells, many of which interfere with PAMP-triggered immunity (PTI). One effector, AvrPtoB, suppresses PTI using a central domain to bind host BAK1, a kinase that acts with several pattern recognition receptors to activate defense signaling. A second AvrPtoB domain binds and suppresses the PTI-associated kinase Bti9 but is conversely recognized by the protein kinase Pto to activate effector-triggered immunity. We report the crystal structure of the AvrPtoB-BAK1 complex, which revealed structural similarity between these two AvrPtoB domains, suggesting that they arose by intragenic duplication. The BAK1 kinase domain is structurally similar to Pto, and a conserved region within both BAK1 and Pto interacts with AvrPtoB. BAK1 kinase activity is inhibited by AvrPtoB, and mutations at the interaction interface disrupt AvrPtoB virulence activity. These results shed light on a structural mechanism underlying host-pathogen coevolution. Copyright © 2011 Elsevier Inc. All rights reserved.

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