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Published on: February 15, 2019
Temporally programmed virulence cascade drives progressive maize root rot by Fusarium graminearum
Mingjian Hu1,2, Wenxiu Niu1, Honglan Chen1
1State Key Laboratory of High-Efficiency Production of Wheat-Maize Double Cropping, Henan Agricultural University, No. 218 Ping'an Avenue, Zhengdong New Area, Zhengzhou 450046, China.
None:
Fusarium graminearum threatens grain safety through trichothecene mycotoxins; yet, how it temporally orchestrates virulence during early root colonization-which compromises seedling vigor and facilitates stem invasion-remains unclear. We performed high-resolution transcriptomics of F. graminearum-infecting maize roots every 6 h over 48 hpi, revealing 3 infection phases: penetration initiation (0 to 6 hpi), colonization establishment (12 hpi), and systemic disruption (18 to 48 hpi). Among 6,839 fungal genes, we delineated a 3-phase virulence program: rapid activation of protein synthesis enables early secretion of effectors and hydrolases that facilitate host attachment and penetration; sustained deployment of diverse hydrolases and immunosuppressive effectors enables colonization through combined nutrient acquisition and defense suppression; and late-phase vascular degradation coupled with deoxynivalenol biosynthesis may contribute to systemic host disruption by compromising tissue integrity and disarming immunity. This program coincides with a shift from ROS scavenging to endogenous signaling that may promote toxin production and invasive growth. Notably, we identified FgCPA1, a conserved Phase II carboxypeptidase A essential for root colonization, whose protease domain triggers light-independent cell death in N. benthamiana independent of its signal peptide. This temporal framework uncovers phase-specific coordination of tissue invasion and mycotoxin production, providing actionable targets for antivirulence strategies to safeguard grain quality.

