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Size of bicelle defects probed via diffusion nuclear magnetic resonance of PEG
Ronald Soong1, Daniel Majonis, Peter M Macdonald
1Department of Chemistry, University of Toronto, Toronto, Ontario, Canada.
Abstract:
Diffusion of various poly(ethylene glycol) (PEG) tracers of well-defined molecular weight and narrow polydispersity confined within the aqueous interstices between positively magnetically aligned bicelles was measured using pulsed-field-gradient (1)H nuclear magnetic resonance. The bicelles consisted of mixtures of dimyristoylphosphatidylcholine (DMPC), dimyristoylphosphatidylglycerol (DMPG), and dihexanoylphosphatidylcholine (DHPC) in the molar ratios q = [100 DMPC +5 DMPG]/[DHPC] = 3.5, 4.5, and 5.5, to which Yb(3+) had been added in the ratio 1:75 Yb(3+)/phospholipid. The field gradients were applied such that diffusion was measured in the direction parallel to the normal to the bicelles' planar regions, thereby rendering the experiment sensitive to the ability of PEG to traverse lamellar defects within the bicelles. The pulsed-field-gradient nuclear magnetic resonance diffusive intensity decays were diffusion-time-independent in all cases, with diffusive displacements corresponding to many hundreds of bicellar lamellae. This permitted a description of such diffusive decays in terms of a mean behavior involving a combination of straight obstruction effects common to all PEG, with hindrance to diffusion proportional to the relative size of a given PEG with respect to the size of the lamellar defects. Across the range of PEG molecular weights (200-4600) and bicelle compositions examined, the apparent radial dimension of the lamellar defects decreased from 165 A with q = 3.5 to 125 A with q = 5.5. This is opposite to the trend predicted from static geometric models of either bicelle disks or perforated lamellae. Qualitatively, the observed trend suggests that mobility of the obstructions to diffusion will need to be considered to reconcile these differences.
Insights
Poly(ethylene glycol) diffusion in bicelles reveals lamellar defect sizes are smaller than predicted. Tracer size influences diffusion, suggesting mobile obstructions are key to understanding bicelle structure.
Area of Science:
- Biophysics
- Materials Science
- Physical Chemistry
Background:
- Bicelles are model membrane systems used to study lipid-protein interactions and membrane properties.
- Understanding diffusion within confined environments is crucial for drug delivery and biomaterial design.
Purpose of the Study:
- To measure the diffusion of poly(ethylene glycol) (PEG) tracers within magnetically aligned bicelles.
- To determine the size of lamellar defects in bicelles and how they relate to bicelle composition.
- To investigate the factors influencing PEG diffusion in bicellar systems.
Main Methods:
- Pulsed-field-gradient (1)H nuclear magnetic resonance (NMR) was used to measure PEG diffusion.
- Experiments were conducted on bicelles composed of DMPC, DMPG, and DHPC with Yb(3+) ions.
- Diffusion was measured parallel to the normal of the bicelle's planar regions.
Main Results:
- PEG diffusion was independent of diffusion time, indicating large displacements across many bicellar lamellae.
- The apparent radial dimension of lamellar defects decreased with increasing bicelle component ratio (q).
- Observed defect sizes were smaller than predicted by static geometric models.
Conclusions:
- PEG diffusion is hindered by lamellar defects, with hindrance proportional to PEG size relative to defect size.
- The observed trend of decreasing defect size with increasing q contradicts static models.
- Mobile obstructions likely play a significant role in diffusion within bicelles, requiring further investigation.
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