Abstract
Phospholipid bilayer nanodiscs composed of 1,2-dimyristoyl-sn-glycero-3-phosphocholine and synthetic maleic acid–styrene copolymer belts have been introduced as a pseudostationary phase (PSP) in electrokinetic chromatography and demonstrated good performance. The nanodiscs provide a suitable migration range and high theoretical plate counts. Using this nanodisc pseudostationary phase, the affinity of the bilayer structure for probe solutes was determined and characterized. Good correlation is observed between retention factors and octanol water partition coefficients for particular categories of solutes, but the general correlation is weak primarily because the nanodiscs show stronger affinity than octanol for hydrogen bond donors. This suggests that a more appropriate application of this technology is to measure and characterize interactions between solutes and lipid bilayers directly. Linear solvation energy relationship analysis of the nanodisc–solute interactions in this study demonstrates that the nanodiscs provide a solvation environment with low cohesivity and weak hydrogen bond donating ability, and provide relatively strong hydrogen bond acceptor strength.
| Original language | English |
|---|---|
| Pages (from-to) | 738-746 |
| Number of pages | 9 |
| Journal | Electrophoresis |
| Volume | 38 |
| Issue number | 5 |
| DOIs | |
| State | Published - Mar 1 2017 |
Funding
The authors gratefully acknowledge financial support for this project from the Montana Research and Economic Development Initiative (grant number 51030-MUSRI2015-02) and NIH Award P20GM103546 to the Center for Biomolecular Structure and Dynamics at the University of Montana. The authors gratefully acknowledge Stefan Scheidelaar and J. Antoinette Killian for the gift of the Xiran 300010 copolymer and useful discussions and advice on its use.
| Funder number |
|---|
| 51030-MUSRI2015-02 |
| P20GM103546 |
| 300010 |
Keywords
- DMPC
- Electrokinetic chromatography
- Linear solvation energy relationships
- Nanodisc
- Phospholipid bilayer