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Published on: January 3, 2025
Selectively targeting UDP-glucose 4-epimerase MoUGE1 for controlling rice blast disease
Zhiguang Qu1, Deng Chen2, Hong Hu1
1State Key Laboratory of Agricultural Microbiology and Provincial Key Laboratory of Plant Pathology of Hubei Province, College of Plant Science and Technology, Huazhong Agricultural University, Wuhan 430070, China.
Introduction:
The fungal cell wall, a dynamic structure critical for pathogenesis, is composed of polysaccharides and proteins. UDP-glucose 4-epimerases (UGEs) play a pivotal role in cell wall synthesis by converting UDP-galactose between UDP-glucose. This study investigates the role of MoUGE1 in Magnaporthe oryzae pathogenesis and explores its potential as an antifungal target for fungal disease control. A lead inhibitor targeting MoUGE1 was identified through virtual screening.
Objectives:
The aims of this study were to elucidate the role of MoUGE1 in M. oryzae during rice blast pathogenesis, assess its potential as an antifungal target, and identify potential MoUGE1 inhibitors through virtual screening to control rice blast.
Methods:
To analyses the role of MoUGE1 in M. oryzae, we generated Δuge1 mutants via split-PCR-mediated gene knockout. The impact of MoUGE1 on fungal growth, cell wall composition, and plant infection was assessed. Metabolomic analysis revealed the impact of MoUGE1 deletion on metabolic processes of rice blast. Structure-based virtual screening, molecular dynamics (MD) simulation and surface plasmon resonance (SPR) used to find hit compounds inhibiting MoUGE1.
Results:
The Δuge1 exhibited reduced mycelial growth, altered cell wall and cell membrane composition, and impaired plant infection. Metabolomic analysis and western blot revealed accumulation in UDP-galactose and alteration of N-glycosylation, leading to cell wall instability and increased sensitivity to cell wall stressors. Virtual screening identified lig122132 as a potential MoUGE1 inhibitor, which was further confirmed through MD simulation and SPR, showing stable binding to the MoUGE1.
Conclusion:
Our findings emphasize the significance of MoUGE1 in fungal cell wall integrity, appressorium function, and virulence in M. oryzae. Identifying MoUGE1 as a target for antifungal intervention provides new insights into the molecular mechanisms of rice blast pathogenesis and paves the way for developing innovative strategies against this major agricultural disease. The potential MoUGE1 inhibitor, lig122132, is a promising starting point for the development of novel fungicides to control rice blast.
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