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May 7, 2026Journal of Fungi0 citationsOpen Access

Histone Demethylase MoRph1 Regulates Fungal Development, Pathogenicity, and DNA Damage Repair in Magnaporthe oryzae

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DLDong LiCYChun YinWZWanying Zhao

Key Points

  • This study aims to explore the functions of the histone demethylase MoRph1 in Magnaporthe oryzae.
  • Targeted deletion of MoRph1 in Magnaporthe oryzae to assess functional roles.
  • Biochemical analyses to confirm the demethylation of histone H3 lysine 36 trimethylation.
  • Transcriptome analysis of gene expression related to DNA damage and stress response.
  • MoRph1 deletion caused reduced vegetative growth and defective appressorium formation.
  • Increased nuclear abnormalities observed under DNA damage stress in MoRph1 mutant.
  • Reduced virulence on rice and barley due to impaired host penetration and energy mobilization.

Abstract

Histone demethylases regulate epigenetic modifications and DNA damage repair in fungal pathogens, yet their specific functions in Magnaporthe oryzae remain poorly understood. This study identifies MoRph1, a JmjC domain-containing histone demethylase that interacts with the COMPASS complex. Targeted deletion of MoRph1 resulted in significantly reduced vegetative growth, impaired conidiation, and defective appressorium formation. The mutant displayed compromised appressorial turgor pressure due to delayed degradation of glycogen and lipid reserves, leading to inefficient host penetration and attenuated virulence on rice and barley. MoRph1 localized to the nucleus, and its absence caused increased nuclear abnormalities under DNA damage stress, suggesting impaired genome stability maintenance. Biochemical analysis confirmed that MoRph1 specifically demethylates histone H3 lysine 36 trimethylation. Transcriptome analysis revealed altered expression of genes associated with DNA replication, mismatch repair, and oxidative stress response. These results establish MoRph1 as a crucial epigenetic regulator coordinating fungal development, infection structure function, energy mobilization, and DNA damage repair. This study underscores the importance of chromatin-level regulation in fungal pathogenicity and provides a foundation for future evaluation of MoRph1 as a potential antifungal target.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69fc2c1f8b49bacb8b347bc7https://doi.org/10.3390/jof12050338
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Functional characterization of MoHym1 in governing pathogenicity and conferring resistance to DNA damage drugs in Magnaporthe oryzae2026
  2. 2A putative rRNA methyltransferase Mrm1 regulates mitochondrial dynamics and pathogenicity in <i>Magnaporthe oryzae</i>2026
  3. 3A novel <scp>MAP</scp> kinase‐interacting protein <scp>MoSmi1</scp> regulates development and pathogenicity in <i>Magnaporthe oryzae</i>2024 · 8 citations
  4. 4<scp>FgJhd2</scp> Modulates <scp>FgMpf2</scp> Expression via <scp>H3K4</scp> Demethylation and Influences Sexual Development in  <i>Fusarium graminearum</i>2026
  5. 5MoMkt1, a member of XPG/RAD2 nuclease family, regulates development and pathogenicity in <i>Magnaporthe oryzae</i>2025