Regulation of fractone heparan sulfate composition in young and aged subventricular zone neurogenic niches

Author:

Kerever Aurelien1,Nagahara Fumina1,Keino-Masu Kazuko2,Masu Masayuki2,van Kuppevelt Toin H3,Vivès Romain R4,Arikawa-Hirasawa Eri15ORCID

Affiliation:

1. Research Institute for Diseases of Old Age, Graduate School of Medicine, Juntendo University, 113-8421 Tokyo, Japan

2. Department of Molecular Neurobiology, Faculty of Medicine, University of Tsukuba, 305-8575 Ibaraki, Japan

3. Department of Biochemistry, Radboud Institute for Molecular Life Sciences, Radboud University Medical Centre, 6500 HB Nijmegen, The Netherlands

4. Univ. Grenoble Alpes, CNRS, CEA, IBS, 38044 Grenoble, France

5. Department of Neurology, School of Medicine, Juntendo University, 113-8421 Tokyo, Japan

Abstract

Abstract Fractones, specialized extracellular matrix structures found in the subventricular zone (SVZ) neurogenic niche, can capture growth factors, such as basic fibroblast growth factor, from the extracellular milieu through a heparin-binding mechanism for neural stem cell (NSC) presentation, which promotes neurogenesis. During aging, a decline in neurogenesis correlates with a change in the composition of heparan sulfate (HS) within fractones. In this study, we used antibodies that recognize specific short oligosaccharides with varying sulfation to evaluate the HS composition in fractones in young and aged brains. To further understand the conditions that regulate 6-O sulfation levels and its impact on neurogenesis, we used endosulfatase Sulf1 and Sulf2 double knockout (DKO) mice. Fractones in the SVZ of Sulf1/2 DKO mice showed immunoreactivity for the HS epitope, suggesting higher 6-O sulfation. While neurogenesis declined in the aged SVZ of both wild-type and Sulf1/2 DKO mice, we observed a larger number of neuroblasts in the young and aged SVZ of Sulf1/2 DKO mice. Together, these results show that the removal of 6-O-sulfation in fractones HS by endosulfatases inhibits neurogenesis in the SVZ. Our findings advance the current understanding regarding the extracellular environment that is best suited for NSCs to thrive, which is critical for the design of future stem cell therapies.

Funder

JSPS

Research on Rare and Intractable Diseases

Ministry of Health, Labor and Welfare of Japan

Ecoles Universitaires de Recherche

Agence Nationale de la Recherche

Interdisciplinary Research Institute of Grenoble

Publisher

Oxford University Press (OUP)

Subject

Biochemistry

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