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The Distribution of the Proteoglycan FORSE-1 in the Developing Mouse Central Nervous System

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Journal J Anat
Date 2018 Nov 27
PMID 30474148
Citations 1
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Abstract

Glycosylation is a major post-translational modification in which a carbohydrate known as a glycan is enzymatically attached to target proteins which regulate protein folding and stability. Glycans are strongly expressed in the developing nervous system where they play multiple roles during development. The importance of these glycan epitopes in neural development is highlighted by a group of conditions known as congenital disorders of glycosylation which lead to psychomotor difficulties, mental retardation, lissencephaly, microencephaly and epilepsy. One of these glycan epitopes, known as Lewis X, is recognised by the FORSE-1 antibody and is regionally expressed in the developing nervous system. In this study, we report the regional and temporal expression patterns of FORSE-1 immunolabelling during the periods of neurogenesis, gliogenesis and axonogenesis in developing mouse nervous system. We demonstrate the localisation of FORSE-1 on subsets of neuroepithelial cells and radial glial cells, and in compartments corresponding to axon tract formation. These spatial, temporal and regional expression patterns are suggestive of roles in the determination of different cell lineages and in the patterning of white matter during development, and help provide insights into the neuroanatomical regions affected by congenital disorders of glycosylation.

Citing Articles

Neural Tissue Homeostasis and Repair Is Regulated via CS and DS Proteoglycan Motifs.

Hayes A, Melrose J Front Cell Dev Biol. 2021; 9:696640.

PMID: 34409033 PMC: 8365427. DOI: 10.3389/fcell.2021.696640.

References
1.
Capela A, Temple S . LeX/ssea-1 is expressed by adult mouse CNS stem cells, identifying them as nonependymal. Neuron. 2002; 35(5):865-75. DOI: 10.1016/s0896-6273(02)00835-8. View

2.
van Echten-Deckert G, Herget T . Sphingolipid metabolism in neural cells. Biochim Biophys Acta. 2006; 1758(12):1978-94. DOI: 10.1016/j.bbamem.2006.06.009. View

3.
Hennen E, Czopka T, Faissner A . Structurally distinct LewisX glycans distinguish subpopulations of neural stem/progenitor cells. J Biol Chem. 2011; 286(18):16321-31. PMC: 3091238. DOI: 10.1074/jbc.M110.201095. View

4.
White R, Barry D . The emerging roles of transplanted radial glial cells in regenerating the central nervous system. Neural Regen Res. 2015; 10(10):1548-51. PMC: 4660731. DOI: 10.4103/1673-5374.165317. View

5.
Pruszak J, Sonntag K, Aung M, Sanchez-Pernaute R, Isacson O . Markers and methods for cell sorting of human embryonic stem cell-derived neural cell populations. Stem Cells. 2007; 25(9):2257-68. PMC: 2238728. DOI: 10.1634/stemcells.2006-0744. View