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Ramezanpour, S.

Publications and source records attributed to Ramezanpour, S..

3 recordsLinked to original sources

Recently emerged Fusarium chemotypes reprogram wheat defence and detoxification networks during Fusarium head blight development

Fusarium head blight (FHB) is a major threat to global wheat production and food safety due to contamination with mycotoxins, such as deoxynivalenol (DON). The emergence of new mycotoxin chemotypes, including 7--hydroxy,15-deacetylcalonectrin (3ANX), presents an evolving challenge for disease management and resistance breeding. Here, we performed a field-based, systems-level proteome analysis of wheat infected with Fusarium graminearum strains belonging to the common 15ADON and recently emerged 15ADON/3ANX chemotypes. Across host and pathogen, we quantified more than 9,200 proteins, providing extensive coverage of infection-associated molecular responses. Infection with 15ADON/3ANX strains suppressed canonical wheat detoxification pathways while promoting structural and oxidative defence responses. Concurrently, the fungal proteome of 15ADON/3ANX-producing strains indicated altered mitochondrial ribosome function and alternative virulence strategies. Further investigation of the host-pathogen interface defined hub protein networks negatively regulating classical detoxification markers, suggesting coordinated regulation of host defence responses regardless of chemotype. Molecular responses were linked to field phenotypes by quantification of DON-3-glucoside/DON ratios and disease severity, defining positive correlations in 15ADON infections, which were abolished upon 15ADON/3ANX infection, indicating chemotype-specific evasion or suppression of host defenses. These findings demonstrate reprogramming of host-pathogen interaction networks and reveal molecular targets that may inform chemotype-aware breeding strategies to enhance crop resilience.

systems biology↗

Mycotoxin-driven proteome remodeling reveals limited activation of Triticum aestivum responses to emerging chemotypes integrated with fungal modulation of ergosterols

Fusarium head blight (FHB), mainly caused by Fusarium graminearum, is a globally important wheat disease reducing yield and grain quality. The pathogen produces mycotoxins deoxynivalenol (DON), 3-acetyl DON (3ADON), 15-acetyl DON (15ADON), and nivalenol (NIV), which threaten food and feed safety. During the past 15 years, surveillance has identified nove trichothecenes 3ANX and NX, which show increased virulence compared to DON. In this study, we investigated the effects of 15ADON/3ANX chemotype on both wheat and F. graminearum proteomes to identify proteins and pathways responsive to the emerging mycotoxin chemotype. We defined a core wheat proteome across all strains (15ADON- and 15ADON/3ANX-producing, and untreated controls) to explore changes in protein abundance associated with defense response, grain development, and reduced photosynthesis upon infection. Conversely, we identified 32 wheat proteins exclusively produced in the presence of 15ADON/3ANX strains, providing further insight into chemotype-specific responses of wheat. Additionally, assessment from the fungal perspective, reported 119 proteins exclusive to the 15ADON/3ANX strains, including those associated with virulence and mycotoxin production. Lastly, investigation of strain-specific proteome changes showed a significant reduction in mycotoxin protective mechanisms in wheat upon exposure to two 15ADON/3ANX strains, as well as a novel connection between elevated ergosterol biosynthesis and 15ADON/3ANX producing strains. Together, our study characterizes distinct protein production profiles in wheat and F. graminearum in response to 3ANX and provides evidence that these molecular changes influence fungal virulence and host defense responses.

plant biology↗

Spatiotemporal dynamics of cryptococcal infection reveal novel immune modulatory mechanisms and antifungal targets

The threat and incidence of fungal diseases are increasing, as is the severity and mortality rates associated with these infections. New strategies to combat fungal infections are urgently needed to overcome rising rates of resistance and the emergence of new pathogens. To promote invasion within a host, fungi use highly adapted and regulated virulence factors, and, in turn, the host adopts an active and dynamic immune response to suppress infection. Understanding the interplay between these processes is crucial to move fungal disease management and treatment forward and improve global health outcomes. Within the present study, we tackle these challenges using state-of-the-art mass spectrometry instrumentation to explore proteome remodeling during active infection of Cryptococcus neoformans at an unprecedented depth with spatiotemporal resolution. Our prioritization of three host organs (i.e., lungs, brain, spleen) critical to initiation, progression, and response of disease discovers tissue-specific remodeling across time. Within the lungs, we revealed early and sustained activation of the host immune response integrated with characterization of a promising new antifungal target, and we propose the discovery of a competitive inhibitor for functional target disruption. Within the brain, proteome remodeling aligns with disease progression, and we define a new mechanistic role for haptoglobin in fungal cell modulation, as well as showcasing an adaptive survival response of C. neoformans within an hypoxic environment. Within the spleen, we reveal new dynamics of immune system activation upon cryptococcal infection. Overall, we provide the deepest integrated view of cryptococcal disease dynamics across temporal and spatial scales, revealing unrecognized mechanisms of host immunity and fungal pathogenesis that offer new avenues for targeted therapeutic intervention and disease management.

microbiology↗