is a marine zoonotic pathogen associated with fish farms that is considered a biomarker of climate change. Zoonotic strains trigger a rapid death of their susceptible hosts (fish or humans) by septicemia that has been linked to a cytokine storm in mice. Therefore, we hypothesize that also causes fish death by triggering a cytokine storm in which red blood cells (RBCs), as nucleated cells in fish, could play an active role. To do it, we used the eel immersion infection model and then analyzed the transcriptome in RBCs, white BCs, and whole blood using an eel-specific microarray platform. Our results demonstrate that triggers an acute but atypical inflammatory response that occurs in two main phases. The early phase (3 h post-infection [hpi]) is characterized by the upregulation of several genes for proinflammatory cytokines related to the mucosal immune response ( and ) along with genes for antiviral cytokines () and antiviral factors ( and ). In contrast, the late phase (12 hpi) is based on the upregulation of genes for typical inflammatory cytokines (), endothelial destruction (), and, interestingly, genes related to an RNA-based immune response (). Functional assays revealed significant proteolytic and hemolytic activity in serum at 12 hpi that would explain the hemorrhages characteristic of this septicemia in fish. As expected, we found evidence that RBCs are transcriptionally active and contribute to this atypical immune response, especially in the short term. Based on a selected set of marker genes, we propose here an RT-qPCR assay that allows detection of early sepsis caused by Finally, we develop a model of sepsis that could serve as a basis for understanding sepsis caused by not only in fish but also in humans.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9011161PMC
http://dx.doi.org/10.3389/fmicb.2022.852677DOI Listing

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