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March 31, 2026Molecular Plant Pathology1 citationsOpen Access

Fungus Derived Indole‐3‐Acetic Acid Controls Developmental Conidial Death in Magnaporthe oryzae

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YMYuming MaSouth China Agricultural UniversityQLQiao LiuSouth China Agricultural UniversityQSQing ShenTemasek Life Sciences Laboratory

Key Points

  • This research aims to understand how indole-3-acetic acid influences ferroptotic conidial death in the fungus Magnaporthe oryzae.
  • Characterized the IAA biosynthesis mutant tam1 Δ and its effects on conidial death.
  • Analyzed lipid metabolism gene mutant ppoa Δ for deficiencies in conidial death and pathogenicity.
  • Assessed the impact of exogenous phosphatidylethanolamines on mutant strains.
  • Investigated the role of TAM1 in autophagy and its effect on ATG8 gene expression.
  • Enhanced levels of indole-3-acetic acid correlated with increased ferroptotic death of conidia.
  • Mutant strains exhibited defects in conidial death and delayed appressorium formation.
  • Exogenous phosphatidylethanolamines partially restored conidial death and pathogenicity in mutants.

Abstract

ABSTRACT Ferroptotic death of the developing conidia is important for pathogenicity of the blast fungus Magnaporthe oryzae , yet its regulatory mechanism is not fully elucidated in fungal cell. In this study, we found that elevated indole‐3‐acetic acid (IAA) promoted iron and lipid peroxide accumulation, leading to a higher degree of ferroptotic death of conidia. By characterising the IAA biosynthesis mutant, tam1 Δ, we found that conidial death was positively correlated with levels of endogenous IAA. Furthermore, we found an IAA‐dependent lipid metabolism gene mutant ppoa Δ displayed deficiencies in conidial death and the consequent delay in appressorium formation, and reduced pathogenicity. Exogenous addition of two types of phosphatidylethanolamines (PEs), DOPE and SLPE, could at least partially restore such defects in both tam1 Δ and ppoa Δ, indicating that IAA promotes ferroptosis by affecting lipid metabolism and/or peroxidation. Additionally, we found TAM1 affected autophagy by modulating transcription of the ATG8 gene. Overall, our study reveals that M. oryzae produces and uses IAA to promote pathogenicity through triggering ferroptotic conidial death during pathogenic development. Our results provide a theoretical basis for blast disease control using IAA synthesis inhibitors.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/69cb64f0e6a8c024954b8f89https://doi.org/10.1111/mpp.70252
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