CD22 antigen: biosynthesis, glycosylation and surface expression of a B lymphocyte protein involved in B cell

R Schwartz-Albiez1, B Dörken, D A Monner

  • 1Institute of Immunology and Genetics, German Cancer Research Center, Heidelberg.

Insights

The CD22 antigen

Area of Science:

  • Immunology
  • Molecular Biology
  • Cell Biology

Background:

  • CD22 antigen is found in the cytoplasm of early B cells and on the surface of mature B lymphocytes.
  • The molecular structure and glycosylation's influence on CD22's surface expression and antibody recognition are not well understood.

Purpose of the Study:

  • To investigate the relationship between the two CD22 glycoproteins (140/130 kd).
  • To determine the influence of N-glycosylation on CD22's surface expression and antibody recognition.

Main Methods:

  • Comparative peptide mapping of CD22 protein cores after endoglycosidase F treatment.
  • Pulse-chase experiments to analyze CD22 precursor molecules.
  • Treatment with glycosylation inhibitors (1-Deoxymannojirimycin, Swainsonine, Tunicamycin).
  • Analysis of CD22 expression in B-lineage ALL cells.

Main Results:

  • CD22 protein cores share a common structure.
  • Mature CD22 glycoproteins originate from separate precursor molecules, possibly due to different RNA processing.
  • Polyclonal anti-serum recognized both core and glycosylated CD22, while mAb HD39 recognized only glycosylated forms.
  • High-mannose type oligosaccharides are sufficient for CD22 surface expression and mAb HD39 recognition.
  • Complex glycosylation is not the determining factor for CD22's cytoplasmic to surface expression switch.

Conclusions:

  • Glycosylation is crucial for stabilizing CD22 epitopes recognized by mAb HD39.
  • Simple, high-mannose oligosaccharide structures support CD22 surface expression.
  • The switch to surface expression of CD22 is independent of complex glycosylation.

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