Tenascin-R promotes assembly of the extracellular matrix of perineuronal nets via clustering of aggrecan

Author:

Morawski Markus1,Dityatev Alexander234,Hartlage-Rübsamen Maike1,Blosa Maren1,Holzer Max1,Flach Katharina1,Pavlica Sanja1,Dityateva Galina23,Grosche Jens1,Brückner Gert1,Schachner Melitta256

Affiliation:

1. Paul Flechsig Institute for Brain Research, University of Leipzig, Jahnallee 59, 04109 Leipzig, Germany

2. Zentrum für Molekulare Neurobiologie, Universitätsklinikum Hamburg - Eppendorf, Martinistr. 52, 20246 Hamburg, Germany

3. Department of Neuroscience and Brain Technologies, Italian Institute of Technology, via Morego 30, Genoa, Italy

4. Molecular Neuroplasticity Group, German Center for Neurodegenerative Diseases (DZNE), 39120 Magdeburg, Germany

5. Center for Neuroscience, Shantou University Medical College, 22 Xin Ling Road, Shantou 515041, People's Republic of China

6. Keck Center for Collaborative Neuroscience and Department of Cell Biology, Rutgers University, 604 Allison Road, Piscataway, NJ 08554, USA

Abstract

Perineuronal nets (PNs) in the brains of tenascin-R-deficient ( tn-r −/− ) mice develop in temporal concordance with those of wild-type ( tn-r +/+ ) mice. However, the histological appearance of PNs is abnormal in adult tn-r −/− mice. Here, we investigated whether similar defects are also seen in dissociated and organotypic cultures from hippocampus and forebrain of tn-r −/− mice and whether the structure of PNs could be normalized. In tn-r −/− cultures, accumulations of several extracellular matrix molecules were mostly associated with somata, whereas dendrites were sparsely covered, compared with tn-r +/+ mice. Experiments to normalize the structure of PNs in tn-r −/− organotypic slice cultures by depolarization of neurons, or by co-culturing tn-r +/+ and tn-r −/− brain slices failed to restore a normal PN phenotype. However, formation of dendritic PNs in cultures was improved by the application of tenascin-R protein and rescued by polyclonal antibodies to aggrecan and a bivalent, but not monovalent form of the lectin Wisteria floribunda agglutinin. These results show that tenascin-R and aggrecan are decisive contributors to formation and stabilization of PNs and that tenascin-R may implement these functions by clustering of aggrecan. Proposed approaches for restoration of normal PN structure are noteworthy in the context of PN abnormalities in neurological disorders, such as epilepsy, schizophrenia and addiction.

Publisher

The Royal Society

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology

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