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CD47 antibody blockade suppresses microglia-dependent phagocytosis and monocyte transition to macrophages, impairing recovery in EAE
Huan Wang, Gail Newton, Liguo Wu, Lih-Ling Lin, Amy S. Miracco, Sridaran Natesan, Francis W. Luscinskas
Huan Wang, Gail Newton, Liguo Wu, Lih-Ling Lin, Amy S. Miracco, Sridaran Natesan, Francis W. Luscinskas
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Research Article Inflammation

CD47 antibody blockade suppresses microglia-dependent phagocytosis and monocyte transition to macrophages, impairing recovery in EAE

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Abstract

Experimental autoimmune encephalomyelitis (EAE) is a well-characterized animal model of multiple sclerosis. During the early phase of EAE, infiltrating monocytes and monocyte-derived macrophages contribute to T cell recruitment, especially CD4+ T cells, into the CNS, resulting in neuronal demyelination; however, in later stages, they promote remyelination and recovery by removal of myelin debris by phagocytosis. Signal regulatory protein α and CD47 are abundantly expressed in the CNS, and deletion of either molecule is protective in myelin oligodendrocyte glycoprotein–induced EAE because of failed effector T cell expansion and trafficking. Here we report that treatment with the function blocking CD47 Ab Miap410 substantially reduced the infiltration of pathogenic immune cells but impaired recovery from paresis. The underlying mechanism was by blocking the emergence of CD11chiMHCIIhi microglia at peak disease that expressed receptors for phagocytosis, scavenging, and lipid catabolism, which mediated clearance of myelin debris and the transition of monocytes to macrophages in the CNS. In the recovery phase of EAE, Miap410 Ab–treated mice had worsening paresis with sustained inflammation and limited remyelination as compared with control Ab–treated mice. In summary, Ab blockade of CD47 impaired resolution of CNS inflammation, thus worsening EAE.

Authors

Huan Wang, Gail Newton, Liguo Wu, Lih-Ling Lin, Amy S. Miracco, Sridaran Natesan, Francis W. Luscinskas

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Figure 1

Phenotype of immune cells present in SCs of nonimmunized (control) and MOG-immunized mice by flow cytometry.

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Phenotype of immune cells present in SCs of nonimmunized (control) and M...
(A) Clinical score (paresis). Data are shown as the mean ± SEM. n = 10 female C57Bl/6J mice. (B) Total number of CD45+CD45lo (resident microglial cells) and CD45hi (blood-derived) immune cells at peak disease (days postimmunization, DPI, 15), recovery phase (DPI 30) and in control nonimmunized mice. (C) t-Distributed stochastic neighbor embedding (t-SNE) representation of immune cells of EAE mice that cluster together. (D) Percentage of immune cell subtypes within CD45hi cells at peak disease. (E) Total number of CD45hi immune cell subtypes in SCs at peak and recovery phase and in nonimmunized control mice. (F and G) Representative plots of CD45lo and CD45hi cells, and CD4+ T cells within the CD45+ group of cells (F), and plots of monocytes (mono), monocyte-derived macrophages (Mono-Macs), and microglia within the CD45+F4/80+Ly6G– group based on Ly6C and MHCII surface expression (G). (H) Representative plots of CD11chiMHCIIhi cells within the CD45lo group. (I and J) Percentage (I) and total number (J) of CD11chiMHCIIhi within the CD45lo group. (K) Relative surface expression of markers on CD45lo resident microglia normalized to control mice. All data were from SCs. Data are shown as mean ± SEM. n = 3–5 mice per group. *P < 0.05, **P < 0.01, ***P < 0.001. A 1-way ANOVA with Tukey’s post hoc test was used to determine the statistical significance.

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