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Glucosylceramide and Galactosylceramide, Small Glycosphingolipids with Significant Impact on Health and Disease

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Journal Glycobiology
Date 2021 Jun 3
PMID 34080016
Citations 39
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Abstract

Numerous clinical observations and exploitation of cellular and animal models indicate that glucosylceramide (GlcCer) and galactosylceramide (GalCer) are involved in many physiological and pathological phenomena. In many cases, the biological importance of these monohexosylcermides has been shown indirectly as the result of studies on enzymes involved in their synthesis and degradation. Under physiological conditions, GalCer plays a key role in the maintenance of proper structure and stability of myelin and differentiation of oligodendrocytes. On the other hand, GlcCer is necessary for the proper functions of epidermis. Such an important lysosomal storage disease as Gaucher disease (GD) and a neurodegenerative disorder as Parkinson's disease are characterized by mutations in the GBA1 gene, decreased activity of lysosomal GBA1 glucosylceramidase and accumulation of GlcCer. In contrast, another lysosomal disease, Krabbe disease, is associated with mutations in the GALC gene, resulting in deficiency or decreased activity of lysosomal galactosylceramidase and accumulation of GalCer and galactosylsphingosine. Little is known about the role of both monohexosylceramides in tumor progression; however, numerous studies indicate that GlcCer and GalCer play important roles in the development of multidrug-resistance by cancer cells. It was shown that GlcCer is able to provoke immune reaction and acts as a self-antigen in GD. On the other hand, GalCer was recognized as an important cellular receptor for HIV-1. Altogether, these two molecules are excellent examples of how slight differences in chemical composition and molecular conformation contribute to profound differences in their physicochemical properties and biological functions.

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References
1.
Kok J, Babia T, Klappe K, Hoekstra D . Fluorescent, short-chain C6-NBD-sphingomyelin, but not C6-NBD-glucosylceramide, is subject to extensive degradation in the plasma membrane: implications for signal transduction related to cell differentiation. Biochem J. 1995; 309 ( Pt 3):905-12. PMC: 1135717. DOI: 10.1042/bj3090905. View

2.
Lala P, Ito S, Lingwood C . Retroviral transfection of Madin-Darby canine kidney cells with human MDR1 results in a major increase in globotriaosylceramide and 10(5)- to 10(6)-fold increased cell sensitivity to verocytotoxin. Role of p-glycoprotein in glycolipid synthesis. J Biol Chem. 2000; 275(9):6246-51. DOI: 10.1074/jbc.275.9.6246. View

3.
Ichikawa S, Sakiyama H, Suzuki G, Hidari K, Hirabayashi Y . Expression cloning of a cDNA for human ceramide glucosyltransferase that catalyzes the first glycosylation step of glycosphingolipid synthesis. Proc Natl Acad Sci U S A. 1996; 93(22):12654. PMC: 38048. DOI: 10.1073/pnas.93.22.12654. View

4.
Bieberich E . Integration of glycosphingolipid metabolism and cell-fate decisions in cancer and stem cells: review and hypothesis. Glycoconj J. 2004; 21(6):315-27. DOI: 10.1023/B:GLYC.0000046274.35732.47. View

5.
Ruckhaberle E, Rody A, Engels K, Gaetje R, von Minckwitz G, Schiffmann S . Microarray analysis of altered sphingolipid metabolism reveals prognostic significance of sphingosine kinase 1 in breast cancer. Breast Cancer Res Treat. 2007; 112(1):41-52. DOI: 10.1007/s10549-007-9836-9. View