Probing for preferential interactions among sphingolipids in bilayer vesicles using the glycolipid transfer protein
Peter Mattjus1, Adam Kline, Helen M Pike
1The Hormel Institute, University of Minnesota, Austin, Minnesota 55912, USA. pmattjus@hi.umn.edu
Insights
Glycolipid transfer protein (GLTP) activity is sensitive to membrane composition. Increased sphingomyelin in vesicles hinders galactosylceramide transfer, impacting cell membrane structure insights.
Area of Science:
- Biochemistry
- Membrane Biophysics
- Lipidomics
Background:
- Sphingolipids, like sphingomyelin, are crucial components of cell membranes.
- Glycolipids play roles in cell recognition and signaling.
- Membrane microdomains, such as lipid rafts, are influenced by lipid composition.
Purpose of the Study:
- To investigate the effect of sphingomyelin and phosphatidylcholine ratios on galactosylceramide transfer.
- To understand how membrane lipid composition influences glycolipid accessibility to proteins.
- To explore the role of glycolipid transfer protein (GLTP) as a probe for lipid interactions.
Main Methods:
- Utilized unilamellar bilayer vesicles with varying sphingomyelin and phosphatidylcholine molar ratios.
- Employed a fluorescence resonance energy transfer (FRET) assay with labeled galactosylceramide (AV-GalCer) and triglyceride.
- Purified glycolipid transfer protein (GLTP) from bovine brain to mediate transfer.
Main Results:
- Increased sphingomyelin content in vesicles non-linearly decreased the rate of galactosylceramide transfer mediated by GLTP.
- Higher sphingomyelin fractions (≥0.22) significantly reduced transfer rates.
- The accessible pool of galactosylceramide for GLTP-mediated transfer was smaller in high-sphingomyelin vesicles.
- Galactosylceramide transfer was more efficient from vesicles composed of POPC and disaturated phosphatidylcholines.
Conclusions:
- GLTP serves as a sensitive indicator of glycosphingolipid interactions within different lipid environments.
- Membrane lipid composition significantly affects the lateral mixing and accessibility of glycolipids.
- These findings provide insights into the formation and maintenance of sphingolipid-enriched membrane microdomains like rafts and caveolae.
Abstract:
We have investigated the intervesicular transfer of galactosylceramide between unilamellar bilayer vesicles composed of differing sphingomyelin and phosphatidylcholine molar ratios. To monitor glycolipid transfer from donor to acceptor vesicles, we used a fluorescence resonance energy transfer assay involving anthrylvinyl-labeled galactosylceramide (AV-GalCer) and perylenoyl-labeled triglyceride. The transfer was mediated by glycolipid transfer protein (GLTP), purified from bovine brain and specific for glycolipids. The initial transfer rate and the total accessible pool of glycolipid in the donor vesicles were both measured. An increase in the sphingomyelin content of 1-palmitoyl-2-oleoyl phosphatidylcholine (POPC) vesicles decreased the transfer rate in a nonlinear fashion. Decreased transfer rates were clearly evident at sphingomyelin mole fractions of 0.22 or higher. The pool of AV-GalCer available for GLTP-mediated transfer also was smaller in vesicles containing high sphingomyelin content. In contrast, AV-GalCer was more readily transferred from vesicles composed of POPC and different disaturated phosphatidylcholines. Our results show that GLTP acts as a sensitive probe for detecting interactions of glycosphingolipids with neighboring lipids and that the lateral mixing of glycolipids is probably affected by the matrix lipid composition. The compositionally driven changes in lipid interactions, sensed by GLTP, occur in membranes that are either macroscopically fluid-phase or gel/fluid-phase mixtures. Gaining insights into how changes in membrane sphingolipid composition alter accessibility to soluble proteins with affinity for membrane glycolipids is likely to help increase our understanding of how sphingolipid-enriched microdomains (i.e., "rafts" and caveolae) are formed and maintained in cells.
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