The barley MLA13-AVRA13 heterodimer reveals principles for immunoreceptor recognition of RNase-like powdery mildew effectors

EMBO J. 2025 Jun;44(11):3210-3230. doi: 10.1038/s44318-025-00373-9. Epub 2025 Feb 13.

Abstract

Co-evolution between cereals and pathogenic grass powdery mildew fungi is exemplified by sequence diversification of an allelic series of barley resistance genes encoding Mildew Locus A (MLA) nucleotide-binding leucine-rich repeat (NLR) immunoreceptors with an N-terminal coiled-coil domain (CNLs). Each immunoreceptor recognises a matching, strain-specific powdery mildew effector encoded by an avirulence gene (AVRa). We present here the cryo-EM structure of barley MLA13 in complex with its cognate effector AVRA13-1. The effector adopts an RNase-like fold when bound to MLA13 in planta, similar to crystal structures of other RNase-like AVRA effectors unbound to receptors. AVRA13-1 interacts via its basal loops with MLA13 C-terminal leucine-rich repeats (LRRs) and the central winged helix domain (WHD). Co-expression of structure-guided MLA13 and AVRA13-1 substitution variants show that the receptor-effector interface plays an essential role in mediating immunity-associated plant cell death. Furthermore, by combining structural information from the MLA13-AVRA13-1 heterocomplex with sequence alignments of other MLA receptors, we engineered a single amino acid substitution in MLA7 that enables expanded effector detection of AVRA13-1 and the virulent variant AVRA13-V2. In contrast to the pentameric conformation of previously reported effector-activated CNL resistosomes, MLA13 was purified and resolved as a stable heterodimer from an in planta expression system. Our study suggests a common structural principle for RNase-like effector binding to MLAs and highlights the utility of structure-guided engineering of plant immune receptors for broadening their pathogen effector recognition capabilities.

Keywords: Co-evolution; NLR Receptors; Pathogen Effectors; Plant Immunity; Powdery Mildew.

MeSH terms

  • Ascomycota* / genetics
  • Ascomycota* / metabolism
  • Ascomycota* / pathogenicity
  • Cryoelectron Microscopy
  • Fungal Proteins* / chemistry
  • Fungal Proteins* / genetics
  • Fungal Proteins* / metabolism
  • Hordeum* / genetics
  • Hordeum* / immunology
  • Hordeum* / metabolism
  • Hordeum* / microbiology
  • Models, Molecular
  • Plant Diseases* / microbiology
  • Plant Proteins* / chemistry
  • Plant Proteins* / genetics
  • Plant Proteins* / metabolism
  • Protein Binding
  • Protein Multimerization
  • Ribonucleases* / chemistry
  • Ribonucleases* / genetics
  • Ribonucleases* / metabolism

Substances

  • Plant Proteins
  • Ribonucleases
  • Fungal Proteins