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Gomez-Gutierrez, S. V.

Publications and source records attributed to Gomez-Gutierrez, S. V..

4 recordsLinked to original sources

Development of a CRISPR/Cas9-mediated transformation procedure for the wheat pathogen Zymoseptoria tritici

Zymoseptoria tritici is the causal agent of Septoria tritici blotch (STB), one of the most destructive diseases of wheat worldwide. Although the Z. tritici genome encodes hundreds of predicted effector proteins, functional characterization through the use of genome-editing techniques has been limited due to low homologous recombination efficiency and extensive effector redundancy. In this study, we established and evaluated a CRISPR/Cas9-based genome editing procedure for targeted effector gene disruption in Z. tritici using in vitro-assembled Cas9-sgRNA ribonucleoprotein (RNP) complexes combined with short (60 bp) homologous donor DNA flanks. Using this approach, we successfully generated knockout mutants for a selected candidate effector gene, the Hce2 domain-containing effector Mycgr3107904. Virulence assays on the susceptible wheat cultivar Taichung 29 revealed that two independent{Delta} Mycgr3107904 mutants exhibited a pronounced delay in symptom development compared to the wild-type strain IPO323, with disease onset and progression delayed by approximately 4-5 days. While mutant strains ultimately followed a similar disease trajectory, wild-type-infected leaves displayed extensive necrosis and pycnidia formation at earlier time points, indicating a significant reduction in virulence upon loss of Mycgr3107904. Together, our results demonstrate the feasibility of CRISPR/Cas9-mediated effector gene knockout in Z. tritici and provide functional evidence that Mycgr3107904 contributes to timely disease progression. This work advances genome editing tools for Z. tritici and facilitates systematic dissection of effector functions underlying fungal virulence.

genetics↗

Functional Characterization of Zymoseptoria tritici Candidate Effectors Reveals Their Role in Modulating Immunity in Nicotiana benthamiana

Zymoseptoria tritici is a significant wheat pathogen responsible for Septoria tritici blotch (STB) disease. Despite its economic impact, understanding of the molecular interactions between Z. tritici and its host remains limited, particularly the functions of many uncharacterized candidate effectors. Here, we assessed seven Z. tritici candidate effectors with elevated expression during the early biotrophic phase and transition to necrotrophy by transiently expressing them in the heterologous, non-host system Nicotiana benthamiana, with and without their predicted signal peptides. AlphaFold structural predictions revealed that two candidates share similarity with proteins of known function: a sterol-binding protein from Saccharomyces cerevisiae and a necrosis-inducing effector from the apple canker pathogen Valsa mali. Effector-associated phenotypes did not always correlate with expression timing, and signal peptide presence significantly influenced observed activities. Because N. benthamiana is not a natural host of Z. tritici, observed responses may reflect conserved, host-independent activities of effectors or immune recognition by N. benthamiana, rather than their native functions in wheat. Consistent with this distinction, two candidate effectors, Mycgr3107904 and Mycgr394290, induced cell death in N. benthamiana while also modulating ROS burst, likely indicative of immune recognition. Some candidates attenuate ROS production, suggesting potential targeting of conserved cellular processes, whereas none suppress PBR1-mediated cell death. Overall, our results indicate that candidate effector activities cannot be inferred from expression profiles alone, and that responses in the non-host N. benthamiana system reflect a combination of immune recognition and potential conserved activities, and primarily serve to prioritize candidates for validation in the native wheat-Z. tritici interaction.

molecular biology↗

Comparative genomics of the extremophile Cryomyces antarcticus and other psychrophilic Dothideomycetes

Cryomyces antarcticus is an endolithic fungus that inhabits rock outcrops in Antarctica. It survives extremes of cold, humidity and solar radiation in one of the least habitable environments on Earth. This fungus is unusual because it produces heavily melanized, meristematic growth and is thought to be haploid and asexual. Due to its growth in the most extreme environment, it has been suggested as an organism that could survive on Mars. However, the mechanisms it uses to achieve its extremophilic nature are not known. Over a billion years of fungal evolution has enabled representatives of this kingdom to populate almost all parts of planet Earth and to adapt to some of its most uninhabitable environments including extremes of temperature, salinity, pH, water, light, or other sources of radiation. Comparative genomics can provide clues to the processes underlying biological diversity, evolution, and adaptation. This effort has been greatly facilitated by the 1000 Fungal Genomes project and the JGI MycoCosm portal where sequenced genomes have been assembled into phylogenetic and ecological groups representing different projects, lifestyles, ecologies, and evolutionary histories. Comparative genomics within and between these groups provides insights into fungal adaptations, for example to extreme environmental conditions. Here, we analyze two Cryomyces genomes in the context of additional psychrophilic fungi, as well as non-psychrophilic fungi with diverse lifestyles selected from the MycoCosm database. This analysis identifies families of genes that are expanded and contracted in Cryomyces and other psychrophiles and may explain their extremophilic lifestyle. Higher GC contents of genes and of bases in the third positions of codons may help to stabilize DNA under extreme conditions. Numerous smaller contigs in C. antarcticus suggest the presence of an alternative haplotype that could indicate that the sequenced isolate is diploid or dikaryotic. These analyses provide a first step to unraveling the secrets of the extreme lifestyle of C. antarcticus.

genomics↗

Mechanisms of infection and response of the fungal wheat pathogen Zymoseptoria tritici during compatible, incompatible and non-host interactions

Zymoseptoria tritici is responsible for Septoria tritici blotch, a disease causing significant annual yield losses in wheat. To investigate infection phase-specific gene expression in the pathogen, we analyzed gene expression during infection of susceptible (Taichung 29) and resistant (Veranopolis and Israel 493) wheat cultivars, plus the non-host species barley at 1, 3, 6, 10, 17 and 23 days post inoculation (DPI). There were dramatic differences in pathogen gene expression at 10 DPI in the susceptible compared to both resistant interactions. The most pronounced differences in pathogen gene expression were observed at 3 DPI in both the susceptible and resistant host interactions compared to the non-host interaction. Thirty-one putative effectors showed early expression during the susceptible interaction compared to the non-host interaction, and six effectors were selected for subcellular localization studies. Using Agrobacterium-mediated transient expression in Nicotiana benthamiana, subcellular localization assays revealed that two candidate effectors, Mycgr3109710 and Mycgr394290, localized to putative mobile cytosolic bodies when expressed without their signal peptides, suggesting potential roles in intracellular signaling or host gene regulation. When expressed with their native signal peptides, four candidate effectors localized to the cytosol, while one effector, Mycgr3107904, did not accumulate to detectable levels, as shown by immunoblot analysis, indicating degradation. Comparison of pathogen gene expression in the susceptible host to expression in the resistant hosts, allowed us to identify genes that are expressed during the transition from biotrophic to necrotrophic growth at 10 DPI. Comparison of pathogen gene expression in resistant and susceptible hosts, versus in the non-host barley, allowed us to identify genes involved in initial colonization and host recognition. In addition, our study contributes to understanding candidate effectors that are activated early during infection and may play a role in the initial suppression of plant immunity, making them strong candidates for functional characterization.

plant biology↗