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Unusual Fragmentation Pathways in Collagen Glycopeptides
Authors:Irina Perdivara  Lalith Perera  Marnisa Sricholpech  Masahiko Terajima  Nancy Pleshko  Mitsuo Yamauchi  Kenneth B Tomer
Institution:1. Mass Spectrometry Group, NIH/National Institute of Environmental Health Sciences, Research Triangle Park, NC, USA
2. Computational Chemistry Group, NIH/National Institute of Environmental Health Sciences, Research Triangle Park, NC, USA
3. Faculty of Dentistry, Srinakarinwirot University, Bangkok, Thailand
4. School of Dentistry, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA
5. Department of Bioengineering, Temple University, Philadelphia, PA, USA
Abstract:Collagens are the most abundant glycoproteins in the body. One characteristic of this protein family is that the amino acid sequence consists of repeats of three amino acids –(X—Y—Gly)n. Within this motif, the Y residue is often 4-hydroxyproline (HyP) or 5-hydroxylysine (HyK). Glycosylation in collagen occurs at the 5-OH group in HyK in the form of two glycosides, galactosylhydroxylysine (Gal-HyK) and glucosyl galactosylhydroxylysine (GlcGal-HyK). In collision induced dissociation (CID), collagen tryptic glycopeptides exhibit unexpected gas-phase dissociation behavior compared to typical N- and O-linked glycopeptides (i.e., in addition to glycosidic bond cleavages, extensive cleavages of the amide bonds are observed). The Gal- or GlcGal- glycan modifications are largely retained on the fragment ions. These features enable unambiguous determination of the amino acid sequence of collagen glycopeptides and the location of the glycosylation site. This dissociation pattern was consistent for all analyzed collagen glycopeptides, regardless of their length or amino acid composition, collagen type or tissue. The two fragmentation pathways—amide bond and glycosidic bond cleavage—are highly competitive in collagen tryptic glycopeptides. The number of ionizing protons relative to the number of basic sites (i.e., Arg, Lys, HyK, and N-terminus) is a major driving force of the fragmentation. We present here our experimental results and employ quantum mechanics calculations to understand the factors enhancing the labile character of the amide bonds and the stability of hydroxylysine glycosides in gas phase dissociation of collagen glycopeptides.
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