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NK cells require immune checkpoint receptor LILRB4/gp49B to control neurotropic Zika virus infections in mice
Ha-Na Lee, Mohanraj Manangeeswaran, Aaron P. Lewkowicz, Kaliroi Engel, Monica Chowdhury, Mamatha Garige, Michael A. Eckhaus, Carole Sourbier, Derek D.C. Ireland, Daniela Verthelyi
Ha-Na Lee, Mohanraj Manangeeswaran, Aaron P. Lewkowicz, Kaliroi Engel, Monica Chowdhury, Mamatha Garige, Michael A. Eckhaus, Carole Sourbier, Derek D.C. Ireland, Daniela Verthelyi
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Research Article Immunology Infectious disease

NK cells require immune checkpoint receptor LILRB4/gp49B to control neurotropic Zika virus infections in mice

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Abstract

Immune cells express an array of inhibitory checkpoint receptors that are upregulated upon activation and limit tissue damage associated with excessive response to pathogens or allergens. Mouse leukocyte immunoglobulin like receptor B4 (LILRB4), also known as glycoprotein 49B (gp49B), is an inhibitory checkpoint receptor constitutively expressed in myeloid cells and upregulated in B cells, T cells, and NK cells upon activation. Here, we report that expression of LILRB4, which binds Zika virus (ZIKV), was increased in microglia and myeloid cells infiltrating the brains of neonatal mice with ZIKV-associated meningoencephalitis. Importantly, while C57BL/6 mice developed transient neurological symptoms but survived infection, mice lacking LILRB4/gp49B (LILRB4 KO) exhibited more severe signs of neurological disease and succumbed to disease. Their brains showed increased cellular infiltration but reduced control of viral burden. The reduced viral clearance was associated with altered NK cell function in the absence of LILRB4/gp49B. In naive animals, this manifested as reduced granzyme B responses to stimulation, but in ZIKV-infected animals, NK cells showed phenotypic changes that suggested altered maturation, diminished glucose consumption, reduced IFN-γ and granzyme B production, and impaired cytotoxicity. Together, our data reveal LILRB4/gp49B as an important regulator of NK cell function during viral infections.

Authors

Ha-Na Lee, Mohanraj Manangeeswaran, Aaron P. Lewkowicz, Kaliroi Engel, Monica Chowdhury, Mamatha Garige, Michael A. Eckhaus, Carole Sourbier, Derek D.C. Ireland, Daniela Verthelyi

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Figure 2

LILRB4 deficiency worsens clinical outcomes in ZIKV infection.

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LILRB4 deficiency worsens clinical outcomes in ZIKV infection.
(A and B)...
(A and B) P1 WT (n = 30) and P1 LILRB4-KO mice (n = 18) were challenged with 1000 TCID50/mL of ZIKV and monitored for weight changes (A) and survival (B). Statistical significance was determined by a 2-way ANOVA (A) and the log-rank test (B), respectively. (C) Quantification of ZIKV RNA copies using real-time PCR was performed in ZIKV-infected WT and LILRB4-KO mice at 9 and 15 dpi in the brain, blood, kidney, eye, liver, and spleen (n = 3–8 per group). (D) Virus and infiltrating cell distribution in the brains of ZIKV-infected WT and LILRB4-KO mice at 15 dpi. The images show representative immunofluorescence staining for CD45 (green), ZIKV (pink), and DAPI (blue) in brain sections from WT and LILRB4-KO mice. (E and F) Flow cytometry analysis was performed on cells isolated from the brains of uninfected (P16) or ZIKV-infected WT and LILRB4-KO mice at 15 dpi (n = 3–4, each group). Live cells were gated and separated based on CD45 expression. The graph shows the percentage of infiltrating cells (CD45hi) in total live cells (E). CD45hi cells were gated and the population of the following cells was determined: macrophages (CD45hiCD11b+F4/80+), DCs (CD45hiCD11c+F4/80–Ly6G–), neutrophils (CD45hiCD11b+Ly6G+F4/80–), T cells (CD45hiCD3+NK1.1–), and NK cells (CD45hiNK1.1+CD3–). Both graph and pie charts show the percentage of indicated cells within CD45hi cell population in the brain (F). Data were analyzed using 2-tailed unpaired Student’s t test (C, E, and F). (G) Histopathology of the brains from ZIKV-infected WT and LILRB4-KO mice at 22 dpi. The upper images show representative H&E staining of cerebellum or hippocampus (original magnification, 20×); scale bars: 500 μm. The bottom images show representative brain lesions observed in cerebellum or hippocampus (original magnification, 400×); scale bars: 20 μm. White arrows indicate multifocal malacia or focal gliosis. *P < 0.05, ***P < 0.001. N.D., not detected.

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