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Endothelial SOCS3 maintains homeostasis and promotes survival in endotoxemic mice
Nina Martino, Ramon Bossardi Ramos, Shuhan Lu, Kara Leyden, Lindsay Tomaszek, Sudeshna Sadhu, Gabrielle Fredman, Ariel Jaitovich, Peter A. Vincent, Alejandro P. Adam
Nina Martino, Ramon Bossardi Ramos, Shuhan Lu, Kara Leyden, Lindsay Tomaszek, Sudeshna Sadhu, Gabrielle Fredman, Ariel Jaitovich, Peter A. Vincent, Alejandro P. Adam
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Research Article Inflammation Vascular biology

Endothelial SOCS3 maintains homeostasis and promotes survival in endotoxemic mice

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Abstract

SOCS3 is the main inhibitor of the JAK/STAT3 pathway. This pathway is activated by interleukin 6 (IL-6), a major mediator of the cytokine storm during shock. To determine its role in the vascular response to shock, we challenged mice lacking SOCS3 in the adult endothelium (SOCS3iEKO) with a nonlethal dose of lipopolysaccharide (LPS). SOCS3iEKO mice died 16–24 hours postinjection after severe kidney failure. Loss of SOCS3 led to an LPS-induced type I IFN–like program and high expression of prothrombotic and proadhesive genes. Consistently, we observed intraluminal leukocyte adhesion and neutrophil extracellular trap–osis (NETosis), as well as retinal venular leukoembolization. Notably, heterozygous mice displayed an intermediate phenotype, suggesting a gene dose effect. In vitro studies were performed to study the role of SOCS3 protein levels in the regulation of the inflammatory response. In human umbilical vein endothelial cells, pulse-chase experiments showed that SOCS3 protein had a half-life less than 20 minutes. Inhibition of SOCS3 ubiquitination and proteasomal degradation led to protein accumulation and a stronger inhibition of IL-6 signaling and barrier function loss. Together, our data demonstrate that the regulation of SOCS3 protein levels is critical to inhibit IL-6–mediated endotheliopathy during shock and provide a promising therapeutic avenue to prevent multiorgan dysfunction through stabilization of endothelial SOCS3.

Authors

Nina Martino, Ramon Bossardi Ramos, Shuhan Lu, Kara Leyden, Lindsay Tomaszek, Sudeshna Sadhu, Gabrielle Fredman, Ariel Jaitovich, Peter A. Vincent, Alejandro P. Adam

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Figure 11

Increased intraluminal leukocyte accumulation and NETosis in endotoxemic SOCS3iEKO mice.

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Increased intraluminal leukocyte accumulation and NETosis in endotoxemic...
(A) Representative H&E images of thin FFPE sections of lungs and kidneys of LPS-treated control or SOCS3iEKO mice. Arrows point to regions of leukocytes adhered to the vessel walls. (B) Whole-retina flat mounts were stained with CD45 (green) and counterstained with DAPI (blue). tdTomato is shown in red. Left, original magnification 20× tiled images (bar = 100 μm). Top right, detail of a vein showing dramatic leukocyte accumulation (bar = 20 μm). Lower right, scoring of 3 independent experiments (0: No intravascular CD45+ cells. 1: Occasional, <10 in total, CD45+ cells. 2: Multiple cells in >1 vein, occasional small clump. 3: >3 veins compromised, several clumps > 10 cells). Two-way ANOVA and Dunnett’s post hoc tests comparing het and SOCS3iEKO mice with control within saline- or LPS-treated groups. (n = 5–10.) Asterisks denote P < 0.05. (C) Representative images of 5 μm kidney sections stained with an antibody against citrullinated histone H3 (cit H3). Blue, DAPI; red, tdTomato (bar = 100 μm). (D) Quantification of data from 5 μm kidney and liver sections from 3 independent experiments. Mann-Whitney test (n = 3–6). (E) Representative images of thick (50 μm) kidney sections from mice injected with FITC-labeled 70 kDa dextran showing a reduction of green fluorescence intensity in control LPS mice and regions with convoluted tubules devoid of fluorescence in endotoxemic SOCS3iEKO mice (white arrow). (F) A detail of a glomerulus and surrounding tubules lacking any dextran in endotoxemic SOCS3iEKO mice (bar = 20 μm). Representative images of 3 independent experiments.

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