Two different isoforms of osteopontin modulate myelination and axonal integrity

Author:

Nilsson Gisela1ORCID,Mottahedin Amin1ORCID,Zelco Aura1ORCID,Lauschke Volker M.234ORCID,Ek C. Joakim1ORCID,Song Juan15,Ardalan Maryam1ORCID,Hua Sha16,Zhang Xiaoli15ORCID,Mallard Carina1ORCID,Hagberg Henrik7ORCID,Leavenworth Jianmei W.89ORCID,Wang Xiaoyang157ORCID

Affiliation:

1. Centre of Perinatal Medicine & Health, Department of Physiology, Institute of Neuroscience and Physiology, Sahlgrenska Academy University of Gothenburg Gothenburg Sweden

2. Department of Physiology and Pharmacology Karolinska Institute Stockholm Sweden

3. Dr Margarete Fischer‐Bosch Institute of Clinical Pharmacology Stuttgart Germany

4. University of Tübingen Tübingen Germany

5. Henan Key Laboratory of Child Brain Injury Institute of Neuroscience and Third Affiliated Hospital of Zhengzhou University Zhengzhou China

6. Department of Cardiology, Ruijin Hospital/Luwan Branch, School of Medicine Shanghai Jiao Tong University Shanghai China

7. Centre of Perinatal Medicine & Health, Department of Obstetrics and Gynaecology, Institute of Clinical Sciences, Sahlgrenska Academy University of Gothenburg Gothenburg Sweden

8. Department of Neurosurgery University of Alabama at Birmingham Birmingham Alabama USA

9. Department of Microbiology University of Alabama at Birmingham Birmingham Alabama USA

Abstract

AbstractAbnormal myelination underlies the pathology of white matter diseases such as preterm white matter injury and multiple sclerosis. Osteopontin (OPN) has been suggested to play a role in myelination. Murine OPN mRNA is translated into a secreted isoform (sOPN) or an intracellular isoform (iOPN). Whether there is an isoform‐specific involvement of OPN in myelination is unknown. Here we generated mouse models that either lacked both OPN isoforms in all cells (OPN‐KO) or lacked sOPN systemically but expressed iOPN specifically in oligodendrocytes (OLs‐iOPN‐KI). Transcriptome analysis of isolated oligodendrocytes from the neonatal brain showed that genes and pathways related to increase of myelination and altered cell cycle control were enriched in the absence of the two OPN isoforms in OPN‐KO mice compared to control mice. Accordingly, adult OPN‐KO mice showed an increased axonal myelination, as revealed by transmission electron microscopy imaging, and increased expression of myelin‐related proteins. In contrast, neonatal oligodendrocytes from OLs‐iOPN‐KI mice compared to control mice showed differential regulation of genes and pathways related to the increase of cell adhesion, motility, and vasculature development, and the decrease of axonal/neuronal development. OLs‐iOPN‐KI mice showed abnormal myelin formation in the early phase of myelination in young mice and signs of axonal degeneration in adulthood. These results suggest an OPN isoform‐specific involvement, and a possible interplay between the isoforms, in myelination, and axonal integrity. Thus, the two isoforms of OPN need to be separately considered in therapeutic strategies targeting OPN in white matter injury and diseases.

Funder

Vetenskapsrådet

Brain Foundation

National Natural Science Foundation of China

Publisher

Wiley

Subject

Cancer Research,Biochemistry, Genetics and Molecular Biology (miscellaneous),Molecular Medicine,Physiology

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