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Therapeutic inhibition of soluble brain TNF promotes remyelination by increasing myelin phagocytosis by microglia
Maria Karamita, Christopher Barnum, Wiebke Möbius, Malú G. Tansey, David E. Szymkowski, Hans Lassmann, Lesley Probert
Maria Karamita, Christopher Barnum, Wiebke Möbius, Malú G. Tansey, David E. Szymkowski, Hans Lassmann, Lesley Probert
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Research Article Therapeutics

Therapeutic inhibition of soluble brain TNF promotes remyelination by increasing myelin phagocytosis by microglia

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Abstract

Multiple sclerosis (MS) is an inflammatory CNS demyelinating disease in which remyelination largely fails. Transmembrane TNF (tmTNF) and TNF receptor 2 are important for remyelination in experimental MS models, but it is unknown whether soluble TNF (solTNF), a major proinflammatory factor, is involved in regeneration processes. Here, we investigated the specific contribution of solTNF to demyelination and remyelination in the cuprizone model. Treatment with XPro1595, a selective inhibitor of solTNF that crosses the intact blood-brain barrier (BBB), in cuprizone-fed mice did not prevent toxin-induced oligodendrocyte loss and demyelination, but it permitted profound early remyelination due to improved phagocytosis of myelin debris by CNS macrophages and prevented disease-associated decline in motor performance. The beneficial effects of XPro1595 were absent in TNF-deficient mice and replicated in tmTNF-knockin mice, showing that tmTNF is sufficient for the maintenance of myelin and neuroprotection. These findings demonstrate that solTNF inhibits remyelination and repair in a cuprizone demyelination model and suggest that local production of solTNF in the CNS might be one reason why remyelination fails in MS. These findings also suggest that disinhibition of remyelination by selective inhibitors of solTNF that cross the BBB might represent a promising approach for treatment in progressive MS.

Authors

Maria Karamita, Christopher Barnum, Wiebke Möbius, Malú G. Tansey, David E. Szymkowski, Hans Lassmann, Lesley Probert

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Figure 3

Therapeutic inhibition of soluble TNF in brain promotes early resolution of microgliosis in demyelinated lesions.

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Therapeutic inhibition of soluble TNF in brain promotes early resolution...
(A) Immunostaining for Ionized calcium-binding adaptor molecule 1 (Iba1) and 2’, 3’-cyclic nucleotide 3’-phosphodiesterase (CNPase) in serial coronal paraffin sections of corpus callosum from representative vehicle- (left column) and XPro1595-treated (right column) CPZ0, CPZ3, CPZ4, and CPZ5 mice (n = 8 for vehicle-treated CPZ0, n = 4 for XPro1595-treated CPZ0, and n = 6–12 for all other time points). Scale bars: 100 μM. (B) Quantitative representation of area covered by Iba1 immunoreactivity in the callosum in groups of mice represented in A. (C) Numbers of Iba1-immunoreactive microglia/mm3, as measured by stereology in brain coronal cryostat sections through callosum from representative vehicle- and XPro1595-treated CPZ0 and CPZ5 mice (n = 3–4 for each group). (D) Levels of Chil3 and Il-1β mRNA transcripts relative to Gapdh in whole brain samples from vehicle- and XPro1595-treated CPZ0 and CPZ5 mice by quantitative PCR (n = 3–4 per group). (E) Quantitative representation of area covered by Iba1 immunoreactivity in coronal paraffin sections of corpus callosum of vehicle- and XPro1595-treated CPZ0 and CPZ5 Tnf–/– or WT mice (n = 6–8 per group). The results shown are from one representative ([C, D, and E] Tnf–/–) of three ([A, B, and E] WT) independent experiments. Statistical significance after comparisons between areas of Iba1 immunoreactivity in the different mouse strains (B and E), numbers of Iba1-immunoreactive cells (C), and brain mRNA levels (D) by two-way ANOVA with Bonferroni’s test, is shown. *P < 0.05, **P < 0.01, ***P < 0.001. (A) Asterisks show early resolution of microgliosis accompanying recovery of myelin. (B, C, D, and E) Circles show values for individual mice.

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