Fungal MicroRNA-Like RNAs Facilitate Convergent Attack on a Host Immune Signalling Network

Jinqi Tang1, Shun Gong1, Feng Jiang1

  • 1Laboratory of Fruit Cell and Molecular Breeding, China Agricultural University, Beijing, China.

Insights

Apple leaf spot fungus Alternaria alternata uses fungal small RNAs (milRNAs) delivered via extracellular vesicles to suppress apple plant immunity by targeting key defense kinases, revealing a novel cross-kingdom communication strategy.

Area of Science:

  • Plant Pathology
  • Molecular Plant-Microbe Interactions
  • RNA Interference

Background:

  • Cross-kingdom RNA interference is crucial in plant-pathogen interactions.
  • Mechanisms of fungal small RNA-mediated host immune suppression are not fully understood.

Purpose of the Study:

  • To investigate how Alternaria alternata f. sp. mali suppresses apple plant immunity.
  • To identify specific fungal small RNAs and their host targets involved in this interaction.

Main Methods:

  • Small RNA sequencing of fungal extracellular vesicles (EVs).
  • Molecular and genetic analyses of fungal small RNAs (AamilRNAs) and apple immune kinases.
  • Pull-down assays to identify protein interactions within the host defense pathway.

Main Results:

  • Alternaria alternata delivers microRNA-like RNAs (milRNAs) via EVs into apple tissues.
  • Identified AamilRNAs (AamilR251, AamilR292, AamilR004) target apple immune kinases MdMAPKKK1, MdRLK2, and MdMAPKK6.
  • A linear phosphorylation cascade (MdRLK2-MdCRK10-MdMAPKKK1-MdMAPKK6) is essential for apple defense activation.

Conclusions:

  • Fungal milRNAs disrupt apple's central immune signaling network, attenuating virulence.
  • Targeting these kinases offers a strategy to enhance apple resistance against fungal pathogens.
  • MdRLK2-MdCRK10 interaction and phosphorylation are critical for activating plant defense.

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