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CXCL10 stabilizes T cell–brain endothelial cell adhesion leading to the induction of cerebral malaria
Elizabeth W. Sorensen, Jeffrey Lian, Aleksandra J. Ozga, Yoshishige Miyabe, Sophina W. Ji, Shannon K. Bromley, Thorsten R. Mempel, Andrew D. Luster
Elizabeth W. Sorensen, Jeffrey Lian, Aleksandra J. Ozga, Yoshishige Miyabe, Sophina W. Ji, Shannon K. Bromley, Thorsten R. Mempel, Andrew D. Luster
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Research Article Immunology Infectious disease

CXCL10 stabilizes T cell–brain endothelial cell adhesion leading to the induction of cerebral malaria

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Abstract

Malaria remains one of the world’s most significant human infectious diseases and cerebral malaria (CM) is its most deadly complication. CM pathogenesis remains incompletely understood, hindering the development of therapeutics to prevent this lethal complication. Elevated levels of the chemokine CXCL10 are a biomarker for CM, and CXCL10 and its receptor CXCR3 are required for experimental CM (ECM) in mice, but their role has remained unclear. Using multiphoton intravital microscopy, CXCR3 receptor– and ligand–deficient mice and bone marrow chimeric mice, we demonstrate a key role for endothelial cell–produced CXCL10 in inducing the firm adhesion of T cells and preventing their cell detachment from the brain vasculature. Using a CXCL9 and CXCL10 dual-CXCR3-ligand reporter mouse, we found that CXCL10 was strongly induced in the brain endothelium as early as 4 days after infection, while CXCL9 and CXCL10 expression was found in inflammatory monocytes and monocyte-derived DCs within the blood vasculature on day 8. The induction of both CXCL9 and CXCL10 was completely dependent on IFN-γ receptor signaling. These data demonstrate that IFN-γ–induced, endothelium-derived CXCL10 plays a critical role in mediating the T cell–endothelial cell adhesive events that initiate the inflammatory cascade that injures the endothelium and induces the development of ECM.

Authors

Elizabeth W. Sorensen, Jeffrey Lian, Aleksandra J. Ozga, Yoshishige Miyabe, Sophina W. Ji, Shannon K. Bromley, Thorsten R. Mempel, Andrew D. Luster

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Figure 7

CXCL9 and CXCL10 expression and regulation in immune cells in PbA-infected brains.

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CXCL9 and CXCL10 expression and regulation in immune cells in PbA-infect...
REX3 (white bars), REX3-Ifnar–/– (IFNAR–/–, gray bars), REX3-Ifngr–/– (IFNγR–/–, black bars), and WT mice were infected with Plasmodium berghei ANKA (PbA) and on day 8 or 9 single-cell suspensions of brain cortices (Percoll-enriched for leukocytes) were analyzed by flow cytometry. (A) The left most dotplots are from REX3 and WT cortex single-cell suspension and are stained with viability dye and gated on live single cells only. The gating strategy shown is used in panels B and C and also shows the markers used to select the immune subsets shown panels D–G. Percentage of (B) CXCL9 and CXCL10 (RFP+BFP+) double-positive or (C) CXCL10 (BFP+) single-positive cells within each immune cell subset in REX3 mice. Percentage of each indicated subset expressing (D) CXCL9 and CXCL10 (RFP+BFP+) or (E) CXCL10 only (BFP+). Number of cells in each indicated subset expressing (F) CXCL9 and CXCL10 (RFP+BFP+) or (G) CXCL10 only (BFP+) per brain. (H) Histogram depicting the CXCL10-BFP levels in microglia (black line), inflammatory monocytes (iMOs) (blue line), and monocyte-derived DCs (Mo-DCs) (red line). (I) Dot plots showing CXCL9-RFP and CXCL10-BFP expression on Percoll gradient–enriched leukocytes isolated from the brains of REX3, REX3-Ifnar–/–, and REX3-Ifngr–/– mice. In B–G, all graphs are gated on all live cells. The numbers of mice/group total from 3 independent experiments were as follows: REX3 = 7, REX3-Ifnar–/– = 8, and REX3-Ifngr–/– = 10. The groups in D–G were compared using 2-way ANOVA with Bonferroni’s multiple comparison test. Bars represent the mean with SEM in all plots.

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