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Published on: March 14, 2011
Effect of anti-alkaline phosphatase monoclonal antibody on B lymphocyte function
1V.A. Lakeside Medical Center, Chicago, IL 60611.
Insights
Alkaline phosphatase (APase) on B cells aids IgM secretion but doesn't drive proliferation. This glycosylphosphatidyl-inositol (GPI)-anchored protein's role in B cell activation is linked to transmembrane signaling and protein phosphorylation.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Alkaline phosphatase (APase) is a glycosylphosphatidyl-inositol (GPI)-anchored protein expressed on activated B cells.
- Its precise physiological role in B cell activation and function remains undefined.
- Other GPI-anchored proteins are implicated in transmembrane signaling pathways.
Purpose of the Study:
- To investigate the role of membrane APase (mAPase) in B cell activation.
- To determine if anti-APase monoclonal antibodies (mAbs) can modulate B cell responses to mitogens.
Main Methods:
- Rat splenic B cells were treated with anti-APase specific mAb.
- Cells were stimulated with lipopolysaccharide (LPS) plus dextran sulfate, a known B cell mitogen.
- Proliferation was measured by [3H]thymidine uptake and viable cell recovery.
- Immunoglobulin M (IgM) secretion was assessed.
- APase activity was measured in response to mAb treatment.
Main Results:
- Anti-APase mAb alone did not induce B cell proliferation or modulate mitogen-induced proliferation.
- Soluble or cross-linked anti-APase mAb augmented IgM secretion.
- Both soluble and immobilized anti-APase mAb decreased APase activity in mitogen-stimulated B cells.
Conclusions:
- Transmembrane signaling may occur through mAPase, similar to other GPI-anchored proteins.
- This signaling might be regulated by protein phosphorylation modulated by APase activity.
- mAPase plays a role in regulating B cell activation, particularly in IgM secretion.
Abstract:
Alkaline phosphatase (APase) is a glycosylphosphatidyl-inositol (GPI)-anchored protein appearing on the membranes of mitogen-stimulated B cells after progression into S phase of the cell cycle. Maximal APase expression occurs after peak proliferation and precedes maximal immunoglobulin (Ig) secretion. While APase is clearly an activation marker for mitogen-stimulated B cells, the physiologic role of APase in B cells has not been defined. Other GPI-anchored proteins have been assigned roles in transmembrane signaling since treatment with specific monoclonal antibodies (mAbs) can modulate and/or mimic the effect of mitogens or antigens. Thus, as an initial attempt to determine whether membrane APase (mAPase) plays a role in B cell activation, rat splenic B cells were treated with anti-APase specific mAb in the presence and absence of LPS plus dextran sulfate, known B cell mitogens. Anti-APase mAb alone did not induce proliferation or modulate mitogen-induced proliferation as measured by [3H]thymidine uptake and viable cell recoveries. However, the mAb augmented IgM secretion when used in a soluble form or cross-linked with anti-Ig. Both soluble and immobilized anti-APase mAb decreased the expression of APase activity by mitogen-stimulated B cells. Based upon these results we propose: (1) that transmembrane signaling may occur through mAPase as described for other GPI-anchored proteins such as Thy-1, CD55, CD59, CD24, CD73, Fc gamma III, Qa-2, Ly-6A/E and LFA-3, and (2) this signaling may be regulated by changes in protein phosphorylation caused by modulation of cellular phosphatases, specifically APase.
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