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Tsukahara, R.

Publications and source records attributed to Tsukahara, R..

2 recordsLinked to original sources

2'-Deoxyuridine-promoted infection in Pyricularia oryzae is counteracted by bacterial thymidine phosphorylase

Successful infection by the rice blast fungus Pyricularia oryzae depends on precise developmental transitions on the plant surface, yet the extracellular metabolites that regulate these events remain poorly understood. One such metabolite, 2'-deoxyuridine (dU), has been identified as a self-produced infection-promoting factor, but its mode of action has remained unclear. Exogenous dU did not significantly affect conidial germination but accelerated early appressorium initiation and promoted appressorium maturation, as indicated by increased glycogen mobilization and elevated intracellular turgor. Extracellular dU was detected during early infection-related development, indicating that dU accumulates under conditions conducive to appressorium formation. To test whether microbial turnover of dU influences pathogenicity, dU-degrading bacteria were isolated from rice field environments, and Enterobacter sp. strain C3 was identified as the most active isolate. Biochemical and structural analyses identified the responsible enzyme as the thymidine phosphorylase DeoA, which converts dU to uracil in a phosphate-dependent reaction. Recombinant DeoA reproduced this activity in vitro, and enzymatic depletion of dU attenuated invasive hyphal growth and lesion development. Appressorium-specific expression of deoA in P. oryzae likewise reduced pathogenicity. Together, these results identify extracellular dU as a factor promoting infection-related development in P. oryzae and suggest that dU degradation provides a potential approach for the biological control of rice blast disease. IMPORTANCESuccessful infection by the rice blast fungus Pyricularia oryzae depends on tightly regulated developmental changes on the plant surface. This study identifies 2'-deoxyuridine as an extracellular molecule that helps drive these early infection events. The fungus-derived nucleoside promoted appressorium formation and maturation, accumulated during early infection-related development, and could be targeted for disease suppression. A rice field bacterium, Enterobacter sp. strain C3, and its enzyme DeoA efficiently degraded 2'-deoxyuridine, and this depletion reduced fungal invasion and disease development. These findings uncover a previously unrecognized extracellular signal associated with infection-related development in the rice blast fungus and point to metabolite degradation by environmental microbes as a promising route for biological control.

microbiology↗

Sox17 downstream gene Rasip1 is involved in the hematopoietic activity of intra-aortic hematopoietic clusters in the midgestation mouse embryo

BackgroundDuring mouse embryonic development, definitive hematopoiesis is first detected around embryonic day (E) 10.5 in the aorta-gonad-mesonephros (AGM) region. Hematopoietic stem cells (HSCs) arise in the dorsal aortas intra-aortic hematopoietic cell clusters (IAHCs). We have previously reported that a transcription factor Sox17, is expressed in IAHCs, and that, among them, CD45lowc-Kithigh cells have high hematopoietic activity. Furthermore, forced expression of Sox17 in this population of cells can maintain the formation of hematopoietic cell clusters. However, how Sox17 does so, particularly downstream signaling involved, remains poorly understood. The purpose of this study is to search for new Sox17 targets which contribute to cluster formation with hematopoietic activity. MethodsRNA-sequencing (RNA-seq) analysis was done to identify genes that are up- regulated in Sox17-expressing IAHCs as compared with Sox17-negative ones. Among the top 7 highly expressed genes, Rasip1 which had been reported to be a vascular-specific regulator was focused on in this study and firstly the whole-mount immunostaining was done. We conducted a luciferase reporter assay to identify the Sox17 binding site for Rasip1 gene induction. We also analyzed the cluster formation and the multi-lineage colony forming ability of Rasip1-transduced cells and Rasip1-knockdown Sox17-transduced cells. ResultsThe increase of the Rasip1 expression level was observed in Sox17-positive CD45lowc-Kithigh cells as compared with the Sox17-nonexpressing control. Also, the expression level of the Rasip1 gene was increased by the Sox17-nuclear translocation. Rasip1 was expressed on the membrane of IAHCs, overlapping with the endothelial cell marker, CD31, and hematopoietic stem/progenitor marker (HSPC), c-Kit. Overexpression of Rasip1 in CD45lowc-Kithigh cells led to a significant but transient increase in hematopoietic activity, while Rasip1 knock-down in Sox17-transduced cells decreased the cluster formation and diminished the colony-forming ability. ConclusionsRasip1 knockdown in Sox17-transduced CD45lowc-Kithigh cells displayed a significant decrease in the multi-lineage colony forming ability and the cluster size. Rasip1 overexpression in Sox17-untransduced CD45lowc-Kithigh cells led to a significant but transient increase in the multi-lineage colony forming ability, suggesting the presence of a cooperating factor for sustained hematopoietic activity.

developmental biology↗