B-lymphocyte quiescence, tolerance and activation as viewed by global gene expression profiling on microarrays

R Glynne1, G Ghandour, J Rayner

  • 1Eos Biotechnology, South San Francisco, California, USA.

Immunological Reviews
|October 24, 2000
PubMed

Insights

B cells decide between quiescence, anergy, or activation through gene expression changes. Inhibitory gene expression maintains tolerance, while reduced inhibition and increased promitotic genes drive activation, offering targets for pro-tolerogenic drugs.

Area of Science:

  • Immunology
  • Molecular Biology
  • Systems Biology

Background:

  • Self-tolerance in lymphocytes is crucial for preventing autoimmunity.
  • Cellular checkpoints regulate lymphocyte fate, determining quiescence, division, differentiation, or death.
  • Understanding these checkpoints requires analyzing molecular pathways governing B cell fate decisions.

Purpose of the Study:

  • To investigate the molecular pathways governing B cell fate decisions (quiescence, anergy, activation).
  • To apply DNA microarrays for global gene expression profiling in splenic B cells.
  • To elucidate how summation of gene expression changes dictates cell fate.

Main Methods:

  • Global gene expression profiling using DNA microarrays on splenic B cells.
  • Analysis of gene expression patterns in quiescent, anergic, and activated B cells.
  • Linking gene responses to signal transduction pathways using modulators of calcium and MAPK signaling.

Main Results:

  • Quiescent B cells highly express inhibitory genes (e.g., SLAP, Kruppel family proteins).
  • B cell activation involves decreased inhibitory gene expression and increased promitotic genes (e.g., c-myc, cyclin D2).
  • Anergy maintains inhibitory gene expression and induces additional signaling inhibitors (e.g., CD72, SATB1).

Conclusions:

  • B cell quiescence and anergy are actively maintained by specific gene expression profiles.
  • Cell fate decisions result from the summation of numerous small changes in stimulatory and inhibitory gene expression.
  • These findings offer insights for developing pro-tolerogenic drugs to emulate tolerance mechanisms.

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