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Published on: June 23, 2013
Membrane changes in lipopolysaccharide-stimulated murine B lymphocytes associated with cell activation
J A Printen1, S L Woodard, J R Herman
1Department of Chemistry, Colorado State University, Ft. Collins 80523.
Insights
Lipopolysaccharide (LPS) stimulation alters B lymphocyte membranes, reducing lipid diffusion. This change is linked to LPS interaction, not direct membrane insertion, affecting B cell activation.
Area of Science:
- Cell Biology
- Immunology
- Biophysics
Background:
- B lymphocytes are crucial immune cells activated by lipopolysaccharide (LPS).
- Membrane fluidity plays a role in cell signaling and function.
- Lipid lateral diffusion dynamics in B cells upon activation are not fully understood.
Purpose of the Study:
- To investigate the effect of LPS on the lateral diffusion of lipid analogs in murine B lymphocyte membranes.
- To determine if LPS insertion into the plasma membrane causes changes in lipid mobility.
- To correlate changes in lipid diffusion with B cell activation.
Main Methods:
- Fluorescence photobleaching recovery (FPR) techniques were used to measure the lateral diffusion of the fluorescent lipid analog DiI.
- Murine B lymphocytes were treated with LPS, and DiI mobility was assessed over time.
- The diffusion of TRITC-labeled LPS (TRITC-LPS) was also measured in LPS-responsive and hypo-responsive mice.
Main Results:
- LPS treatment significantly decreased DiI lateral diffusion in B lymphocytes at 37°C.
- Surface immunoglobulin lateral diffusion remained unchanged, indicating specific effects on the lipid bilayer.
- TRITC-LPS diffusion mirrored DiI diffusion changes, suggesting non-specific LPS interaction with the B cell membrane.
Conclusions:
- LPS activation alters the composition and dynamics of B lymphocyte membranes.
- Decreased lipid lateral diffusion is a consequence of LPS-induced B cell activation, not direct LPS insertion.
- LPS interacts non-specifically with B cell membranes, likely via its lipid A moiety.
Abstract:
The lateral diffusion of the fluorescent lipid analog 3,3'-dioctadecylindocarbocyanine iodide (DiI) was measured in the membranes of murine B lymphocytes treated with the B cell mitogen lipopolysaccharide (LPS). The mobility of DiI, as measured by fluorescence photobleaching recovery (FPR) techniques, was temperature-dependent with a value of 6.1.10(-9) cm2 s-1 at 37 degrees C. Untreated cells exhibited this diffusion coefficient over 72 h in culture. In contrast, DiI mobility decreased to 2.0.10(-9) cm2 s-1 at 37 degrees C in membranes of LPS-stimulated lymphocytes 24 h following LPS exposure. Interestingly, this decreased lipid lateral diffusion was not accompanied by any change in surface immunoglobulin lateral diffusion which remained essentially unchanged at 3.6-4.3.10(-11) cm2 s-1 over 72 h. To determine whether LPS effects on lipid lateral diffusion were due to insertion of LPS into the cell plasma membrane, we examined TRITC-LPS diffusion in B lymphocytes from LPS-responsive Balb/c and C3Heb/FeJ mice and from hypo-responsive C3H/HeJ mice. DiI and TRITC-LPS mobility decreased more than 50% in LPS-stimulated Balb/c and C3Heb/FeJ cells by 72 h. On C3H/HeJ lymphocytes, there was no change in DiI or TRITC-LPS lateral diffusion throughout the incubation period. These data indicate that B lymphocyte membrane composition is altered in LPS-activated lymphoblasts and that the decreased lateral diffusion of lipid probes does not result from membrane perturbation by LPS insertion into the lipid bilayer. Further, similarities between TRITC-LPS and DiI lateral diffusion suggest that most LPS molecules interact non-specifically with B cell membranes, presumably by acyl chain insertion of the lipid A moiety.
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