Structural Studies of Fucosylated N-Glycans by Ion Mobility Mass Spectrometry and Collision-Induced Fragmentation of Negative Ions

J Am Soc Mass Spectrom. 2018 Jun;29(6):1179-1193. doi: 10.1007/s13361-018-1950-x. Epub 2018 May 22.

Abstract

There is considerable potential for the use of ion mobility mass spectrometry in structural glycobiology due in large part to the gas-phase separation attributes not typically observed by orthogonal methods. Here, we evaluate the capability of traveling wave ion mobility combined with negative ion collision-induced dissociation to provide structural information on N-linked glycans containing multiple fucose residues forming the Lewisx and Lewisy epitopes. These epitopes are involved in processes such as cell-cell recognition and are important as cancer biomarkers. Specific information that could be obtained from the intact N-glycans by negative ion CID included the general topology of the glycan such as the presence or absence of a bisecting GlcNAc residue and the branching pattern of the triantennary glycans. Information on the location of the fucose residues was also readily obtainable from ions specific to each antenna. Some isobaric fragment ions produced prior to ion mobility could subsequently be separated and, in some cases, provided additional valuable structural information that was missing from the CID spectra alone. Graphical abstract ᅟ.

Keywords: Fragmentation; Fucosylation; Ion mobility; N-Glycans; Negative ion.

MeSH terms

  • Anions / chemistry
  • Carbohydrate Sequence
  • Epitopes / chemistry
  • Fucose / analysis*
  • Humans
  • Ion Mobility Spectrometry / methods*
  • Lewis Blood Group Antigens / chemistry
  • Lewis X Antigen / chemistry
  • Parotid Gland / chemistry
  • Polysaccharides / chemistry*

Substances

  • Anions
  • Epitopes
  • Lewis Blood Group Antigens
  • Lewis X Antigen
  • Lewis Y antigen
  • Polysaccharides
  • Fucose