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Published on: March 17, 2023
The Methylcitrate Cycle is Required for Development and Virulence in the Rice Blast Fungus Pyricularia oryzae
Yuxin Yan1, Huan Wang1, Siyi Zhu1
1State Key Laboratory for Rice Biology, College of Life Sciences, Zhejiang University, Hangzhou 310058, Zhejiang Province, China.
Abstract:
The methylcitrate cycle metabolizes propionyl-CoA, a toxic metabolite, into pyruvate. Pyricularia oryzae (syn. Magnaporthe oryzae) is a phytopathogenic fungus that causes a destructive blast disease in rice and wheat. We characterized the essential roles of the methylcitrate cycle in the development and virulence of P. oryzae using functional genomics. In P. oryzae, the transcript levels of MCS1 and MCL1, which encode a 2-methylcitrate synthase and a 2-methylisocitrate lyase, respectively, were upregulated during appressorium formation and when grown on propionyl-CoA-producing carbon sources. We found that deletion of MCS1 and MCL1 inhibited fungal growth on media containing both glucose and propionate, and media using propionate or propionyl-CoA-producing amino acids (valine, isoleucine, methionine, and threonine) as the sole carbon or nitrogen sources. The Δmcs1 mutant formed sparse aerial hyphae and did not produce conidia on complete medium (CM), while the Δmcl1 mutant showed decreased conidiation. The aerial mycelium of Δmcs1 displayed a lowered NAD+/NADH ratio, reduced nitric oxide content, and downregulated transcription of hydrophobin genes. Δmcl1 showed reduced appressorium turgor, severely delayed plant penetration, and weakened virulence. Addition of acetate recovered the growth of the wild type and Δmcs1 on medium containing both glucose and propionate and recovered the conidiation of both Δmcs1 and Δmcl1 on CM by reducing propionyl-CoA formation. Deletion of MCL1 together with ICL1, an isocitrate lyase gene in the glyoxylate cycle, greatly reduced the mutant's virulence as compared with the single-gene deletion mutants (Δicl1 and Δmcl1). This experimental evidence provides important information about the role of the methylcitrate cycle in development and virulence of P. oryzae by detoxification of propionyl-CoA and 2-methylisocitrate.
Insights
The methylcitrate cycle is crucial for the growth and virulence of the rice blast fungus Pyricularia oryzae. Disrupting this cycle impairs fungal development and its ability to infect plants.
Area of Science:
- Biochemistry
- Mycology
- Plant Pathology
Background:
- Propionyl-CoA is a toxic metabolite that must be detoxified by the methylcitrate cycle.
- Pyricularia oryzae causes destructive blast disease in rice and wheat.
- The methylcitrate cycle's role in P. oryzae virulence and development is not fully understood.
Purpose of the Study:
- To investigate the essential roles of the methylcitrate cycle in P. oryzae development and virulence.
- To characterize the function of MCS1 and MCL1 genes in P. oryzae metabolism and pathogenicity.
Main Methods:
- Functional genomics to characterize MCS1 and MCL1 genes.
- Gene deletion mutants (Δmcs1, Δmcl1) were created and analyzed.
- Fungal growth, conidiation, appressorium formation, and virulence assays were performed.
Main Results:
- MCS1 and MCL1 gene expression increased during appressorium formation and on propionyl-CoA-producing media.
- Deletion of MCS1 and MCL1 inhibited fungal growth on propionate-based media and impaired conidiation.
- Δmcs1 mutants showed altered aerial mycelium characteristics, while Δmcl1 mutants exhibited reduced appressorium turgor and delayed plant penetration.
- Acetate supplementation restored growth and conidiation by reducing propionyl-CoA levels.
- Combined deletion of MCL1 and ICL1 significantly reduced virulence.
Conclusions:
- The methylcitrate cycle is essential for P. oryzae development and virulence.
- Detoxification of propionyl-CoA and 2-methylisocitrate by the methylcitrate cycle is critical for fungal pathogenicity.
- Targeting the methylcitrate cycle could be a strategy to control rice blast disease.
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