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Domain Mapping of Chondroitin/Dermatan Sulfate Glycosaminoglycans Enables Structural Characterization of Proteoglycans

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Date 2021 Mar 24
PMID 33757834
Citations 5
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Abstract

Of all posttranslational modifications known, glycosaminoglycans (GAGs) remain one of the most challenging to study, and despite the recent years of advancement in MS technologies and bioinformatics, detailed knowledge about the complete structures of GAGs as part of proteoglycans (PGs) is limited. To address this issue, we have developed a protocol to study PG-derived GAGs. Chondroitin/dermatan sulfate conjugates from the rat insulinoma cell line, INS-1832/13, known to produce primarily the PG chromogranin-A, were enriched by anion-exchange chromatography after pronase digestion. Following benzonase and hyaluronidase digestions, included in the sample preparation due to the apparent interference from oligonucleotides and hyaluronic acid in the analysis, the GAGs were orthogonally depolymerized and analyzed using nano-flow reversed-phase LC-MS/MS in negative mode. To facilitate the data interpretation, we applied an automated LC-MS peak detection and intensity measurement via the Proteome Discoverer software. This approach effectively provided a detailed structural description of the nonreducing end, internal, and linkage region domains of the CS/DS of chromogranin-A. The copolymeric CS/DS GAGs constituted primarily consecutive glucuronic-acid-containing disaccharide units, or CS motifs, of which the N-acetylgalactosamine residues were 4-O-sulfated, interspersed by single iduronic-acid-containing disaccharide units. Our data suggest a certain heterogeneity of the GAGs due to the identification of not only CS/DS GAGs but also of GAGs entirely of CS character. The presented protocol allows for the detailed characterization of PG-derived GAGs, which may greatly increase the knowledge about GAG structures in general and eventually lead to better understanding of how GAG structures are related to biological functions.

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References
1.
Persson A, Tykesson E, Westergren-Thorsson G, Malmstrom A, Ellervik U, Mani K . Xyloside-primed Chondroitin Sulfate/Dermatan Sulfate from Breast Carcinoma Cells with a Defined Disaccharide Composition Has Cytotoxic Effects in Vitro. J Biol Chem. 2016; 291(28):14871-82. PMC: 4938203. DOI: 10.1074/jbc.M116.716829. View

2.
Linhardt R, Avci F, Toida T, Kim Y, Cygler M . CS lyases: structure, activity, and applications in analysis and the treatment of diseases. Adv Pharmacol. 2007; 53:187-215. PMC: 4114251. DOI: 10.1016/S1054-3589(05)53009-6. View

3.
Tao L, Song F, Xu N, Li D, Linhardt R, Zhang Z . New insights into the action of bacterial chondroitinase AC I and hyaluronidase on hyaluronic acid. Carbohydr Polym. 2016; 158:85-92. DOI: 10.1016/j.carbpol.2016.12.010. View

4.
Persson A, Gomez Toledo A, Vorontsov E, Nasir W, Willen D, Noborn F . LC-MS/MS characterization of xyloside-primed glycosaminoglycans with cytotoxic properties reveals structural diversity and novel glycan modifications. J Biol Chem. 2018; 293(26):10202-10219. PMC: 6028968. DOI: 10.1074/jbc.RA118.002971. View

5.
Stachtea X, Tykesson E, van Kuppevelt T, Feinstein R, Malmstrom A, Reijmers R . Dermatan Sulfate-Free Mice Display Embryological Defects and Are Neonatal Lethal Despite Normal Lymphoid and Non-Lymphoid Organogenesis. PLoS One. 2015; 10(10):e0140279. PMC: 4619018. DOI: 10.1371/journal.pone.0140279. View