CNS myelin induces regulatory functions of DC-SIGN–expressing, antigen-presenting cells via cognate interaction with MOG

Author:

García-Vallejo J.J.1,Ilarregui J.M.1,Kalay H.1,Chamorro S.1,Koning N.1,Unger W.W.1,Ambrosini M.1,Montserrat V.2,Fernandes R.J.1,Bruijns S.C.M.1,van Weering J.R.T.3,Paauw N.J.1,O’Toole T.1,van Horssen J.13,van der Valk P.3,Nazmi K.4,Bolscher J.G.M.4,Bajramovic J.5,Dijkstra C.D.1,’t Hart B.A.56,van Kooyk Y.1

Affiliation:

1. Department of Molecular Cell Biology and Immunology, VU University Medical Center, 1081HV Amsterdam, Netherlands

2. Division of Cell Biology, Dutch Cancer Institute, 1066X Amsterdam, Netherlands

3. Department of Functional Genomics and Clinical Genetics, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam; and Department of Pathology, VU University Amsterdam, VU University Medical Center, 1081HV Amsterdam, Netherlands

4. Department of Oral Biochemistry, Academic Centre for Dentistry Amsterdam, University of Amsterdam, VU University, 1081LA Amsterdam, Netherlands

5. Alternatives Unit and Dept. Immunobiology, Biomedical Primate Research Centre, 2280 GH Rijswijk, Netherlands

6. Department Neuroscience, University Medical Center, University of Groningen, 9713GZ Groningen, Netherlands

Abstract

Myelin oligodendrocyte glycoprotein (MOG), a constituent of central nervous system myelin, is an important autoantigen in the neuroinflammatory disease multiple sclerosis (MS). However, its function remains unknown. Here, we show that, in healthy human myelin, MOG is decorated with fucosylated N-glycans that support recognition by the C-type lectin receptor (CLR) DC-specific intercellular adhesion molecule-3–grabbing nonintegrin (DC-SIGN) on microglia and DCs. The interaction of MOG with DC-SIGN in the context of simultaneous TLR4 activation resulted in enhanced IL-10 secretion and decreased T cell proliferation in a DC-SIGN-, glycosylation-, and Raf1-dependent manner. Exposure of oligodendrocytes to proinflammatory factors resulted in the down-regulation of fucosyltransferase expression, reflected by altered glycosylation at the MS lesion site. Indeed, removal of fucose on myelin reduced DC-SIGN–dependent homeostatic control, and resulted in inflammasome activation, increased T cell proliferation, and differentiation toward a Th17-prone phenotype. These data demonstrate a new role for myelin glycosylation in the control of immune homeostasis in the healthy human brain through the MOG–DC-SIGN homeostatic regulatory axis, which is comprised by inflammatory insults that affect glycosylation. This phenomenon should be considered as a basis to restore immune tolerance in MS.

Publisher

Rockefeller University Press

Subject

Immunology,Immunology and Allergy

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