The MoSR‐MoDde1 Regulatory Axis: A Novel Determinant of DMI Sensitivity and a Target for Sustainable Rice Blast Control

The transcription factor FgSR functions as a central regulator of ergosterol biosynthesis and 14α-demethylation inhibitor (DMI) sensitivity in Fusarium graminearum, with its orthologous proteins being evolutionarily conserved within Sordariomycetes and Leotiomycetes fungi. In this study, we demonstrate that sterol regulators (SRs) differentially modulate DMI sensitivity across these fungal classes through divergent strategies involving key metabolic genes. In Magnaporthe oryzae, MoSR regulates DMI sensitivity through two distinct mechanisms: it directly modulates the transcription of ergosterol biosynthesis genes MoCYP51A and MoCYP51B, and binds to the DRE (DMI-responsive element) motif to regulate MoDde1 (Magnaporthe oryzae DMI detoxification enzyme 1), a gene encoding a cytochrome P450 monooxygenase involved in detoxification. Evolutionary analysis indicates that MoDde1 functions as a Sordariomycetes-specific detoxification factor, capable of enzymatically degrading DMIs. Based on these findings, we developed a small-molecule D1 targeting MoDde1 and engineered rice lines with reduced MoDde1 expression using host-induced gene silencing (HIGS). Both approaches successfully suppressed the enzymatic activity and expression of MoDde1, respectively, demonstrating a promising sustainable strategy for controlling rice blast disease, particularly in conjunction with DMI fungicides.

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Publication Details

Journal
Advanced Science
Published
2026-09-16
DOI
https://doi.org/10.1002/advs.77796
Primary Topic
Fungal and yeast genetics research
Type
article
Field-Weighted Citation Impact
0.00

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article

The MoSR‐MoDde1 Regulatory Axis: A Novel Determinant of DMI Sensitivity and a Target for Sustainable Rice Blast Control

Weixiao Yin, Min-Zheng Cai, Wen-Kai Wei, Fan-Zhu Meng et al.
Advanced Science
Fungal and yeast genetics research
article

The MoSR‐MoDde1 Regulatory Axis: A Novel Determinant of DMI Sensitivity and a Target for Sustainable Rice Blast Control

Weixiao Yin, Min-Zheng Cai, Wen-Kai Wei, Fan-Zhu Meng, Chaoxi Luo, Guido Schnabel, Liang–Fen Yin, Shuai Meng, Li Zhao, Yufu Wang, Meng‐Yao Wu
article en

Abstract

The transcription factor FgSR functions as a central regulator of ergosterol biosynthesis and 14α-demethylation inhibitor (DMI) sensitivity in Fusarium graminearum, with its orthologous proteins being evolutionarily conserved within Sordariomycetes and Leotiomycetes fungi. In this study, we demonstrate that sterol regulators (SRs) differentially modulate DMI sensitivity across these fungal classes through divergent strategies involving key metabolic genes. In Magnaporthe oryzae, MoSR regulates DMI sensitivity through two distinct mechanisms: it directly modulates the transcription of ergosterol biosynthesis genes MoCYP51A and MoCYP51B, and binds to the DRE (DMI-responsive element) motif to regulate MoDde1 (Magnaporthe oryzae DMI detoxification enzyme 1), a gene encoding a cytochrome P450 monooxygenase involved in detoxification. Evolutionary analysis indicates that MoDde1 functions as a Sordariomycetes-specific detoxification factor, capable of enzymatically degrading DMIs. Based on these findings, we developed a small-molecule D1 targeting MoDde1 and engineered rice lines with reduced MoDde1 expression using host-induced gene silencing (HIGS). Both approaches successfully suppressed the enzymatic activity and expression of MoDde1, respectively, demonstrating a promising sustainable strategy for controlling rice blast disease, particularly in conjunction with DMI fungicides.

Advanced Science
Zhejiang A & F University (CN), Huazhong Agricultural University (CN), Agriculture and Forestry University (NP), Clemson University (US)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, National Key Research and Development Program of China
Openalex Percentile: Top 18%
Fungal and yeast genetics research
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