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N-linked oligosaccharide changes with oncogenic transformation require sialylation of multiantennae

U V Santer1, R DeSantis, K J Hård

  • 1Joseph Stokes Jr Research Institute, Children's Hospital, Philadelphia.

Insights

NIH 3T3 fibroblasts transformed by H-ras oncogene show altered glycopeptide structures. Sialylation in alpha 2-3 linkage on multiple antennae is key for the transformed phenotype, replacing terminal alpha-Gal residues.

Area of Science:

  • Glycobiology
  • Cellular Transformation
  • Biochemistry

Background:

  • NIH 3T3 fibroblasts are a common model for studying cellular transformation.
  • Oncogenes like H-ras play a critical role in cancer development by altering cellular processes.
  • Changes in cell surface glycoproteins, particularly glycopeptides, are associated with malignant transformation.

Purpose of the Study:

  • To analyze and compare the glycopeptide structures of normal NIH 3T3 fibroblasts and those transformed by the H-ras oncogene.
  • To elucidate the specific structural modifications in glycopeptides that correlate with cellular transformation.
  • To investigate the role of sialylation and antennary structure in the transformed phenotype.

Main Methods:

  • Metabolic labeling of cells with D-[3H]glucosamine or L-[3H]fucose.
  • Separation of glycopeptides using Bio-Gel P-10 and DEAE-cellulose chromatography.
  • Structural analysis of glycopeptides using 500-MHz 1H-NMR spectroscopy.
  • Assessment of glycopeptide structure through binding assays with immobilized lectins (Griffonia simplicifolia I and Phaseolus vulgaris L-PHA).

Main Results:

  • Transformed NIH 3T3 cells exhibited a significant increase in charged glycopeptides compared to non-transformed cells.
  • NMR analysis revealed distinct structures: non-transformed cells predominantly had neutral, tetraantennary glycopeptides with terminal Gal alpha 1-3.
  • Transformed cells showed increased tri- and tetraantennary glycopeptides with terminal NeuNAc alpha 2-3 linkages, replacing alpha-Gal residues.
  • Lectin binding confirmed structural differences, with L-PHA affinity decreasing upon removal of NeuNAc alpha 2-3.

Conclusions:

  • The presence of tetraantennary oligosaccharides alone is insufficient for the transformed phenotype.
  • Sialylation of tri- or tetraantennary structures in alpha 2-3 linkage on multiple antennae is crucial for expressing the transformed phenotype in NIH 3T3 cells.
  • Transformation by H-ras oncogene leads to a replacement of terminal alpha-Gal residues with NeuNAc alpha 2-3 in glycopeptides.

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