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Automated Lipid Bilayer Membrane Formation Using a Polydimethylsiloxane Thin Film
Published on: July 10, 2016
Fluid supported lipid bilayers containing monosialoganglioside GM1: a QCM-D and FRAP study
Kevin C Weng1, Jennifer L Kanter, William H Robinson
1Department of Materials Science and Engineering, Stanford University, Stanford, CA 94305, USA. kcw@alumini.stanford.org
Insights
This study demonstrates a new model fluid membrane system for immunological research. Incorporating glycolipids like GM1 into supported lipid bilayers enhances their suitability for detecting antibodies, offering a more biologically relevant platform than traditional methods.
Area of Science:
- Biophysics
- Immunology
- Materials Science
Background:
- Model fluid membranes are crucial for immunological studies.
- Supported lipid bilayers (SLBs) offer a biologically relevant surface.
- Glycolipids can serve as antigens in these model systems.
Purpose of the Study:
- To compare the formation and properties of planar phospholipid bilayers with and without incorporated glycolipids (GM1).
- To evaluate the utility of these glycolipid-containing bilayers for in situ antibody binding.
- To establish a more biologically relevant platform for immunological assays compared to ELISA.
Main Methods:
- Formation of planar supported lipid bilayers (PSLBs) from extruded small unilamellar vesicles (E-SUVs) on silicon dioxide (SiO2) surfaces.
- Quartz crystal microbalance with dissipation (QCM-D) to monitor vesicle fusion and bilayer formation.
- In situ antibody binding assays and fluorescence recovery after photobleaching (FRAP) to assess membrane properties and fluidity.
Main Results:
- Incorporation of 5 mol% GM1 into egg PC E-SUVs resulted in PSLBs with higher deposition mass and lower dissipative energy loss compared to pure egg PC bilayers.
- GM1-containing PSLBs exhibited increased rigidity and tighter packing, evidenced by higher mass and smaller projected area per lipid.
- Specific binding of polyclonal immunoglobulin G anti-GM1 to GM1-containing PSLBs was observed, with binding proportional to antibody concentration. Lateral membrane fluidity was reduced but retained.
Conclusions:
- The developed PSLB system incorporating GM1 provides a robust and biologically relevant platform for immunological studies.
- The observed changes in bilayer properties are attributed to GM1-lipid interactions.
- This platform is suitable for detecting anti-lipid antibodies in serum, offering advantages over conventional methods like ELISA.
Abstract:
In an effort to use model fluid membranes for immunological studies, we compared the formation of planar phospholipid bilayers supported on silicon dioxide surfaces with and without incorporation of glycolipids as the antigen for in situ antibody binding. Dynamic light scattering measurements did not differentiate the hydrodynamic volumes of extruded small unilamellar vesicles (E-SUVs) containing physiologically relevant concentrations (0.5-5 mol%) of monosialoganglioside GM1 (GM1) from exclusive egg yolk L-alpha-phosphatidylcholine (egg PC) E-SUVs. However, quantifiable differences in deposition mass and dissipative energy loss emerged in the transformation of 5 mol% GM1/95 mol% egg PC E-SUVs to planar supported lipid bilayers (PSLBs) by vesicle fusion on thermally evaporated SiO2, as monitored by the quartz crystal microbalance with dissipation (QCM-D) technique. Compared to the 100 mol% egg PC bilayers on the same surface, E-SUVs containing 5 mol% GM1 reached a approximately 12% higher mass and a lower dissipative energy loss during bilayer transformation. PSLBs with 5 mol% GM1 are approximately 18% heavier than 100 mol% egg PC and approximately 11% smaller in projected area per lipid, indicating an increased rigidity and a tighter packing. Subsequent binding of polyclonal immunoglobulin G anti-GM1 to the PSLBs was performed in situ and showed specificity. The anti-GM1 to GM1 ratios at equilibrium were roughly proportional to the concentrations of anti-GM1 administered in the solution. Fluorescence recovery after photobleaching was utilized to verify the retained, albeit reduced lateral fluidity of the supported membranes. Five moles percentage of GM1 membranes (GM1 to PC ratio approximately 1:19) decorated with 1 mol% N-(Texas Red sulfonyl)-1,2-dihexadecanoyl-sn-glycerol-3-phosphoethanolamine (Texas Red DHPE) exhibited an approximately 16% lower diffusion coefficient of 1.32+/-0.06 microm2/s, compared to 1.58+/-0.04 microm2/s for egg PC membranes without GM1 (p<0.01). The changes in vesicle properties and membrane lateral fluidity are attributed to the interactions of GM1 with itself and GM1 with other membrane lipids. This system allows for molecules of interest such as GM1 to exist on a more biologically relevant surface than those used in conventional methods such as ELISA. Our analysis of rabbit serum antibodies binding to GM1 demonstrates this platform can be used to test for the presence of anti-lipid antibodies in serum.
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