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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.
Abstract:
Glycopeptides derived from NIH 3T3 fibroblasts and these cells transformed by transfection with human DNA containing oncogene H-ras were analyzed by 500-MHz 1H-NMR spectroscopy and binding to immobilized lectins. The cells were metabolically labeled with D-[3H]glucosamine or L-[3H]fucose and the glycopeptides included in Bio-Gel P-10 (Mr 5000-3500) were separated into neutral and charged fractions on DEAE-cellulose. The major portion (80%) of these [3H]fucose glycopeptides from the non-transformed NIH 3T3 fibroblasts were neutral or contained one or two charged residues, whereas 90% of the glycopeptides from the transformed cells contained two or more charged residues. The structure of the predominant neutral glycopeptide from the non-transformed NIH 3T3 cells was determined by 1H-NMR spectroscopy to be tetraantennary containing terminal Gal alpha 1----3. (formula; see text) This structure was verified by binding to the immobilized alpha-Gal-specific lectin, Griffonia simplicifolia I and leukoagglutinating phytohemagglutinin from Phaseolus vulgaris (L-PHA), which binds certain tri- or tetraantennary glycopeptides. In contrast, the structure derived by NMR spectroscopy of one of the predominant charged glycopeptides from the transformed cells was triantennary containing terminal NeuNAc alpha 2----3 in addition to Gal alpha 1----3. (formula; see text) In attempting to verify this structure by lectin-binding properties it was found that removal of NeuNAc alpha 2----3 reduced the affinity to L-PHA - agarose. The other major glycopeptides of the transformed cells which were more charged also cotained NeuNAc alpha 2----3 but no NeuNAc alpha 2----6 or Gal alpha 1----3. A tentative structure was proposed for the major glycopeptide of the first charged class from NIH 3T3 cells on the basis of lectin-binding properties and the NMR spectrum which showed, in addition to NeuNAc alpha 2----3, the presence of NeuNAc alpha 2----6 and Gal alpha 1----3. On the basis of the NMR spectrum and other results, it is concluded that the presence of tetraantennary oligosaccharides are not sufficient for the transformed oligosaccharide phenotype. Rather, the tri- or tetraantennae must be sialylated in alpha 2----3 linkage, on more than one antennae, when properties of transformation are expressed in NIH 3T3 cells. Prior to transformation the tetraantennary oligosaccharides of these cells are terminated in alpha-Gal residues, whereas after transformation alpha-Gal residues appear to be replaced by NeuNAc alpha 2----3.(ABSTRACT TRUNCATED AT 400 WORDS)
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.