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Updated: Jul 20, 2026

The Plant Infection Test: Spray and Wound-Mediated Inoculation with the Plant Pathogen Magnaporthe Grisea
Published on: August 4, 2018
Dihydroorotase MoPyr4 is required for development, pathogenicity, and autophagy in rice blast fungus
Jing-Yi Wang1, Ying-Ying Cai2, Lin Li2
1Xianghu Laboratory, State Key Laboratory for Managing Biotic and Chemical Treats to the Quality and Safety of Agro-products, Institute of Biotechnology, Zhejiang University, Hangzhou, 310058, China.
Abstract:
Dihydroorotase (DHOase) is the third enzyme in the six enzymatic reaction steps of the endogenous pyrimidine nucleotide de novo biosynthesis pathway, which is a metabolic pathway conserved in both bacteria and eukaryotes. However, research on the biological function of DHOase in plant pathogenic fungi is very limited. In this study, we identified and named MoPyr4, a homologous protein of Saccharomyces cerevisiae DHOase Ura4, in the rice blast fungus Magnaporthe oryzae and investigated its ability to regulate fungal growth, pathogenicity, and autophagy. Deletion of MoPYR4 led to defects in growth, conidiation, appressorium formation, the transfer and degradation of glycogen and lipid droplets, appressorium turgor accumulation, and invasive hypha expansion in M. oryzae, which eventually resulted in weakened fungal pathogenicity. Long-term replenishment of exogenous uridine-5'-phosphate (UMP) can effectively restore the phenotype and virulence of the ΔMopyr4 mutant. Further study revealed that MoPyr4 also participated in the regulation of the Pmk1-MAPK signaling pathway, co-localized with peroxisomes for the oxidative stress response, and was involved in the regulation of the Osm1-MAPK signaling pathway in response to hyperosmotic stress. In addition, MoPyr4 interacted with MoAtg5, the core protein involved in autophagy, and positively regulated autophagic degradation. Taken together, our results suggested that MoPyr4 for UMP biosynthesis was crucial for the development and pathogenicity of M. oryzae. We also revealed that MoPyr4 played an essential role in the external stress response and pathogenic mechanism through participation in the Pmk1-MAPK signaling pathway, peroxisome-related oxidative stress response mechanism, the Osm1-MAPK signaling pathway and the autophagy pathway.
Insights
MoPyr4, an enzyme in pyrimidine biosynthesis, is crucial for the growth, pathogenicity, and stress response of the rice blast fungus Magnaporthe oryzae. Its deletion impairs development and virulence, highlighting its essential role.
Area of Science:
- Biochemistry
- Mycology
- Plant Pathology
Background:
- Pyrimidine nucleotide de novo biosynthesis is a conserved metabolic pathway.
- Research on dihydroorotase (DHOase) in plant pathogenic fungi is limited.
- MoPyr4 is a DHOase homolog in Magnaporthe oryzae, a key rice pathogen.
Purpose of the Study:
- To investigate the biological function of MoPyr4 in M. oryzae.
- To determine MoPyr4's role in fungal growth, pathogenicity, and autophagy.
- To elucidate MoPyr4's involvement in stress response pathways.
Main Methods:
- Gene deletion and complementation of MoPYR4 in M. oryzae.
- Phenotypic analysis of growth, conidiation, and appressorium formation.
- Investigation of signaling pathways (Pmk1-MAPK, Osm1-MAPK) and autophagy.
Main Results:
- Deletion of MoPYR4 caused defects in growth, conidiation, appressorium formation, and pathogenicity.
- Exogenous uridine-5'-phosphate (UMP) restored the wild-type phenotype and virulence.
- MoPyr4 is involved in oxidative and hyperosmotic stress responses and positively regulates autophagy.
Conclusions:
- MoPyr4 is essential for UMP biosynthesis, fungal development, and pathogenicity in M. oryzae.
- MoPyr4 plays a critical role in stress response and virulence through MAPK pathways and autophagy.

