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Glycobiology of the Nervous System

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Cover of 'Glycobiology of the Nervous System'

Table of Contents

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    Book Overview
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    Chapter 1 Introduction to the Complexity of Cell Surface and Tissue Matrix Glycoconjugates
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    Chapter 2 Introduction to Cells Comprising the Nervous System
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    Chapter 3 Synthesis, Processing, and Function of N-glycans in N-glycoproteins
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    Chapter 4 Synthesis of O-Linked Glycoconjugates in the Nervous System
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    Chapter 5 Chemistry and Function of Glycosaminoglycans in the Nervous System
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    Chapter 6 Use of glycan-targeted antibodies/lectins to study the expression/function of glycosyltransferases in the nervous system.
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    Chapter 7 From Mass Spectrometry-Based Glycosylation Analysis to Glycomics and Glycoproteomics
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    Chapter 8 Structural Analysis of Oligosaccharides and Glycoconjugates Using NMR
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    Chapter 9 Glycolipid and Glycoprotein Expression During Neural Development
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    Chapter 10 Gangliosides and Cell Surface Ganglioside Glycohydrolases in the Nervous System
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    Chapter 11 Role of Myelin-Associated Glycoprotein (Siglec-4a) in the Nervous System
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    Chapter 12 Glycobiology of the Nervous System
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    Chapter 13 Glycosignaling: A General Review
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    Chapter 14 Glycosphingolipids in the Regulation of the Nervous System
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    Chapter 15 Glycobiology of Ion Transport in the Nervous System
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    Chapter 16 O-GlcNAcylation of Neuronal Proteins: Roles in Neuronal Functions and in Neurodegeneration
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    Chapter 17 N-glycosylation in regulation of the nervous system.
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    Chapter 18 Roles of Carbohydrates in the Interaction of Pathogens with Neural Cells
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    Chapter 19 Glycoconjugate Changes in Aging and Age-Related Diseases
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    Chapter 20 Gangliosides and Glycolipids in Neurodegenerative Disorders
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    Chapter 21 Glycosidases: Inborn Errors of Glycosphingolipid Catabolism
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    Chapter 22 Ganglioside Storage Diseases: On the Road to Management
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    Chapter 23 Dynamic Aspects of Neural Tumor Gangliosides
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    Chapter 24 Galectins and Neuroinflammation
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    Chapter 25 Glycoconjugates and Neuroimmunological Diseases
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Chapter title
Glycosphingolipids in the Regulation of the Nervous System
Chapter number 14
Book title
Glycobiology of the Nervous System
Published in
Advances in neurobiology, January 2014
DOI 10.1007/978-1-4939-1154-7_14
Pubmed ID
Book ISBNs
978-1-4939-1153-0, 978-1-4939-1154-7
Authors

Koichi Furukawa, Yusuke Ohmi, Yuki Ohkawa, Orie Tajima, Keiko Furukawa, Furukawa, Koichi, Ohmi, Yusuke, Ohkawa, Yuki, Tajima, Orie, Furukawa, Keiko

Abstract

The highest expression of gangliosides, sialic acid-containing glycosphingolipids (GSLs), is found in the nervous tissue of vertebrates. Changes in the profiles of gangliosides during the development of nervous tissues indicate that they are involved in the regulation of neurogenesis and synaptogenesis. Their distinct distribution patterns support the suggestion that they are involved in both the differentiation and function of neural cells. In addition to results of studies of GSLs done using biochemical, histopathological, and cell biological approaches, recent progress in the genetic engineering of glycosyltransferase genes has resulted in novel findings and concepts about their roles in the nervous system. Roles of GSLs in the regulation of signaling that determine cell fates in membrane microdomains such as lipid rafts have been extensively studied. In particular, gene targeting of glycosyltransferases in mice has enabled investigation of the in vivo functions of GSLs. The majority of abnormal phenotypes exhibited by knockout (KO) mice may reflect an abnormal structure and a resultant altered function of lipid rafts caused by alterations in their GSL composition. Generally speaking, abnormal phenotypes found in most KO mice were milder than expected, suggesting that the remaining GSLs compensate for the functions of those lost. There are also functions that cannot be replaced by the remaining GSLs. Thus, there may be two modes of function of GSLs: one is nonspecific and can be carried out by multiple GSLs, the second mode is that in which the function of the missing GSL(s) cannot be compensated by others. Identification of natural ligands for individual GSLs is crucial in order to clarify the functions of each structure.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 13 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 13 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 7 54%
Student > Bachelor 2 15%
Other 1 8%
Student > Doctoral Student 1 8%
Student > Master 1 8%
Other 1 8%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 5 38%
Agricultural and Biological Sciences 4 31%
Medicine and Dentistry 2 15%
Neuroscience 1 8%
Unknown 1 8%