The study showed that deletion of XopAG did not affect morphology or extracellular enzyme production of Xpm, but significantly attenuated its virulence on cassava, thereby attenuating cassava immunity during early Xpm inoculation.
Abstract
Cassava bacterial blight (CBB), caused by Xanthomonas phaseoli pv. manihotis (Xpm), is a major disease constraining cassava production. Although overexpression of the Xpm effector XopAG enhances Arabidopsis susceptibility to Pseudomonas syringae pv. tomato DC3000, its virulence mechanism in cassava remains unclear. The study showed that deletion of XopAG did not affect morphology or extracellular enzyme production of Xpm, but significantly attenuated its virulence on cassava. Quantitative proteomic analysis revealed that 267 differentially accumulated proteins (DAPs) at 6 hours post-inoculation (hpi) and 429 DAPs at 6 days post-inoculation (dpi) were identified in cassava leaves inoculated with ΔxopAG mutant compared with Xpm. KEGG enrichment analysis showed that DAPs were significantly enriched in phenylpropanoid and flavonoid biosynthesis pathways. In the absence of XopAG, flavonoid biosynthesis-related proteins and genes (DFR, ANR, ANS, CYP75A1, FLS) were up-regulated, accompanied by increased total flavonoid content in cassava leaves during early infection. Furthermore, cassava small heat shock protein MeHSP26 was identified as a host target of XopAG, and two proteins interact in both cytoplasm and nucleus in N. benthamiana. Importantly, degradation assay reveals that XopAG promotes MeHSP26 degradation in N. benthamiana. Silencing MeHSP26 compromised cassava resistance to Xpm, following reducing flavonoid content and suppressing flavonoid gene expression. Together, these results demonstrate that XopAG promotes MeHSP26 degradation to suppress flavonoid biosynthesis, thereby attenuating cassava immunity during early Xpm inoculation. This work provides insights into cassava-Xpm interactions by revealing effector manipulation of metabolic pathways facilitates inoculation.
Findings indicate that FsRGAE1 promotes F. sacchari virulence by suppressing host immune responses in a nuclear localization-dependent manner, providing new insights into effector-mediated F. sacchari pathogenesis and potential target for resistance breeding in sugarcane.
Huifang Li, Shuai Xu, Ying Chen et al.· Journal of Fungi· 0 citations
Pectobacterium carotovorum subsp. carotovorum (Pcc) is the causal agent of bacterial soft rot disease, which triggers rapid decay of infected tomato fruit. Kojic acid, primarily a fermentation metabolite of Aspergillus oryzae, exhibits biocontrol activity against postharvest soft rot of tomato. In this work, we investi...
Xiaoyun Zhang, Wen-Ying Huang, S. Dhanasekaran et al.· Journal of food microbiology· 0 citations
The results suggest that TrcrtB and phytoene are critical for development, stress tolerance and pathogenicity of T. roseum and highlight the roles of TrcrtB and phytoene in the pathogenic fungus T. roseum.
The resistant mutant achieves rust resistance by strengthening physical defense through cell wall reinforcement and by enhancing chemical defense through the accumulation of antimicrobial metabolites, under the control of AP2/ERF members.
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Introduction Several Trichoderma species are recognized as biocontrol agents that can enhance plant defenses against a wide range of biotic and abiotic stresses. However, few studies have investigated Trichoderma activity against bacterial pathogens, and the Xanthomonas axonopodis pv. passiflorae (Xap)-Passiflora eduli...
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