Warfare among rice sheath pathogens : Rhizoctonia solani AG 1-IA neutralizes Pseudomonas fuscovaginae cyclic lipopeptides
- Author
- Jasmine De Rop (UGent) , Durga Prasad (UGent) , Niels Geudens (UGent) , Lu Zhou (UGent) , Pieter Spanoghe (UGent) , José Martins (UGent) and Monica Höfte (UGent)
- Organization
- Project
-
- MEMCLIP: A comprehensive chemical-biology approach to understand the bioactivity of Pseudomonas cyclic lipopeptides on eukaryotic membranes
- A multifaceted approach to boost the biosynthesis of bioactive mycin- and peptin-type cyclic lipopeptides in Pseudomonas
- Ecological roles of cyclic lipopeptides from plant-beneficial rhizobacteria: a chemical-biology approach to decipher primary functions of secondary metabolites.
- ReHiFiNMR - Rejuvenation of High-Field NMR equipment for the continued and enhanced characterization of complex molecular architectures and their interactions
- BACLiPs – Biology, Chemistry and Biophysics of BACterial LipoPeptideS
- Sensitivity Upgrade at High Magnetic Field for NMR Based Science in the Next Decade.
- Abstract
- In this work, we investigated the chemical process underlying the interplay between two rice sheath pathogens: Pseudomonas fuscovaginae, the causal agent of sheath brown rot, and Rhizoctonia solani AG 1-IA, which causes sheath blight. Specifically, we studied the fate of the bacterial cyclic lipopeptides (CLiPs) syringotoxin and fuscopeptin in this interaction. Both compounds exhibit potent antifungal activity against R. solani and induce phytotoxic effects. Ultra-performance liquid chromatography-tandem mass spectrometry analysis demonstrated that R. solani AG 1-IA likely secretes two distinct enzymes: an esterase that hydrolyzes the ester bond in syringotoxin, producing a linear derivative, and a protease that cleaves the glycine-alanine bond within the peptide backbone of fuscopeptin. The degradation products lack antifungal and phytotoxic activities, nullifying the competitive advantage of P. fuscovaginae. These enzymatic effects showed increased activity at 28 degrees C. In contrast, R. solani AG 2-2 did not degrade CLiPs. Further analysis with a broader range of R. solani isolates revealed that CLiP degradation is a common trait among AG 1-IA isolates. This study provides the first evidence that R. solani AG 1-IA actively neutralizes the antifungal and phytotoxic activities of P. fuscovaginae through targeted enzymatic degradation.IMPORTANCERice is a global staple crop that is susceptible to various pathogens, including Pseudomonas fuscovaginae, causing sheath brown rot, and Rhizoctonia solani AG 1-IA, which causes sheath blight. Notably, P. fuscovaginae primarily occurs at lower temperatures, whereas R. solani AG 1-IA is more prevalent under warmer conditions. Previous research demonstrated that P. fuscovaginae produces higher levels of the virulence-associated cyclic lipopeptides (CLiPs) syringotoxin and fuscopeptin at 18 degrees C, potentially explaining its pathogenicity on rice plants grown at high altitudes. Conversely, R. solani AG 1-IA, which is sensitive to these CLiPs, was found to secrete CLiP-degrading enzymes, with degradation activity enhanced at 28 degrees C. When combined with the reduced CLiP production by P. fuscovaginae at higher temperatures, this enzymatic degradation may confer a competitive advantage to R. solani in warmer environments. The absence of reports documenting the co-occurrence of both pathogens in field conditions may, at least in part, be explained by this temperature-dependent antagonism.
- Keywords
- rice sheath brown rot, fuscopeptin, syringotoxin, cyclic lipopeptides, rhizoctonia, STRUCTURAL-CHARACTERIZATION, CAUSAL AGENT, SPP., ROT, LIPODEPSIPEPTIDES, IDENTIFICATION, SYRINGOTOXIN, SYRINGOMYCIN, SYRINGAE, BACILLUS
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Citation
Please use this url to cite or link to this publication: http://hdl.handle.net/1854/LU-01KG7MKFCEBW5G4F44W9VPHVK3
- MLA
- De Rop, Jasmine, et al. “Warfare among Rice Sheath Pathogens : Rhizoctonia Solani AG 1-IA Neutralizes Pseudomonas Fuscovaginae Cyclic Lipopeptides.” APPLIED AND ENVIRONMENTAL MICROBIOLOGY, vol. 92, no. 2, 2026, doi:10.1128/aem.01524-25.
- APA
- De Rop, J., Prasad, D., Geudens, N., Zhou, L., Spanoghe, P., Martins, J., & Höfte, M. (2026). Warfare among rice sheath pathogens : Rhizoctonia solani AG 1-IA neutralizes Pseudomonas fuscovaginae cyclic lipopeptides. APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 92(2). https://doi.org/10.1128/aem.01524-25
- Chicago author-date
- De Rop, Jasmine, Durga Prasad, Niels Geudens, Lu Zhou, Pieter Spanoghe, José Martins, and Monica Höfte. 2026. “Warfare among Rice Sheath Pathogens : Rhizoctonia Solani AG 1-IA Neutralizes Pseudomonas Fuscovaginae Cyclic Lipopeptides.” APPLIED AND ENVIRONMENTAL MICROBIOLOGY 92 (2). https://doi.org/10.1128/aem.01524-25.
- Chicago author-date (all authors)
- De Rop, Jasmine, Durga Prasad, Niels Geudens, Lu Zhou, Pieter Spanoghe, José Martins, and Monica Höfte. 2026. “Warfare among Rice Sheath Pathogens : Rhizoctonia Solani AG 1-IA Neutralizes Pseudomonas Fuscovaginae Cyclic Lipopeptides.” APPLIED AND ENVIRONMENTAL MICROBIOLOGY 92 (2). doi:10.1128/aem.01524-25.
- Vancouver
- 1.De Rop J, Prasad D, Geudens N, Zhou L, Spanoghe P, Martins J, et al. Warfare among rice sheath pathogens : Rhizoctonia solani AG 1-IA neutralizes Pseudomonas fuscovaginae cyclic lipopeptides. APPLIED AND ENVIRONMENTAL MICROBIOLOGY. 2026;92(2).
- IEEE
- [1]J. De Rop et al., “Warfare among rice sheath pathogens : Rhizoctonia solani AG 1-IA neutralizes Pseudomonas fuscovaginae cyclic lipopeptides,” APPLIED AND ENVIRONMENTAL MICROBIOLOGY, vol. 92, no. 2, 2026.
@article{01KG7MKFCEBW5G4F44W9VPHVK3,
abstract = {{In this work, we investigated the chemical process underlying the interplay between two rice sheath pathogens: Pseudomonas fuscovaginae, the causal agent of sheath brown rot, and Rhizoctonia solani AG 1-IA, which causes sheath blight. Specifically, we studied the fate of the bacterial cyclic lipopeptides (CLiPs) syringotoxin and fuscopeptin in this interaction. Both compounds exhibit potent antifungal activity against R. solani and induce phytotoxic effects. Ultra-performance liquid chromatography-tandem mass spectrometry analysis demonstrated that R. solani AG 1-IA likely secretes two distinct enzymes: an esterase that hydrolyzes the ester bond in syringotoxin, producing a linear derivative, and a protease that cleaves the glycine-alanine bond within the peptide backbone of fuscopeptin. The degradation products lack antifungal and phytotoxic activities, nullifying the competitive advantage of P. fuscovaginae. These enzymatic effects showed increased activity at 28 degrees C. In contrast, R. solani AG 2-2 did not degrade CLiPs. Further analysis with a broader range of R. solani isolates revealed that CLiP degradation is a common trait among AG 1-IA isolates. This study provides the first evidence that R. solani AG 1-IA actively neutralizes the antifungal and phytotoxic activities of P. fuscovaginae through targeted enzymatic degradation.IMPORTANCERice is a global staple crop that is susceptible to various pathogens, including Pseudomonas fuscovaginae, causing sheath brown rot, and Rhizoctonia solani AG 1-IA, which causes sheath blight. Notably, P. fuscovaginae primarily occurs at lower temperatures, whereas R. solani AG 1-IA is more prevalent under warmer conditions. Previous research demonstrated that P. fuscovaginae produces higher levels of the virulence-associated cyclic lipopeptides (CLiPs) syringotoxin and fuscopeptin at 18 degrees C, potentially explaining its pathogenicity on rice plants grown at high altitudes. Conversely, R. solani AG 1-IA, which is sensitive to these CLiPs, was found to secrete CLiP-degrading enzymes, with degradation activity enhanced at 28 degrees C. When combined with the reduced CLiP production by P. fuscovaginae at higher temperatures, this enzymatic degradation may confer a competitive advantage to R. solani in warmer environments. The absence of reports documenting the co-occurrence of both pathogens in field conditions may, at least in part, be explained by this temperature-dependent antagonism.}},
articleno = {{e01524-25}},
author = {{De Rop, Jasmine and Prasad, Durga and Geudens, Niels and Zhou, Lu and Spanoghe, Pieter and Martins, José and Höfte, Monica}},
issn = {{0099-2240}},
journal = {{APPLIED AND ENVIRONMENTAL MICROBIOLOGY}},
keywords = {{rice sheath brown rot,fuscopeptin,syringotoxin,cyclic lipopeptides,rhizoctonia,STRUCTURAL-CHARACTERIZATION,CAUSAL AGENT,SPP.,ROT,LIPODEPSIPEPTIDES,IDENTIFICATION,SYRINGOTOXIN,SYRINGOMYCIN,SYRINGAE,BACILLUS}},
language = {{eng}},
number = {{2}},
pages = {{20}},
title = {{Warfare among rice sheath pathogens : Rhizoctonia solani AG 1-IA neutralizes Pseudomonas fuscovaginae cyclic lipopeptides}},
url = {{http://doi.org/10.1128/aem.01524-25}},
volume = {{92}},
year = {{2026}},
}
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