Abstract
Binary mixtures of C20BAS and POPC membranes were studied by solid-state 2H NMR spectroscopy and small angle x-ray scattering (SAXS) over a wide range of concentrations and at different temperatures. Three specifically deuterated C20BAS derivatives-[1′,1′, 20′,20′-2H4]C20BAS, [2′,2′,19′,19′-2H4]C 20BAS, and [10′,11′-2H2]C 20BAS - combined with protiated 1-palmitoyl-2-oleoyl-sn-glycero-3- phosphocholine (POPC), as well as membranes containing POPC-d31 and fully protiated bolalipid, were used in NMR experiments to obtain structural information for the mixtures. The 2H NMR spectra of [10′,11′-2H2]C20BAS/POPC membrane dispersions reveal that the bolalipid is predominantly in the transmembrane conformation at high bolalipid concentrations (100, 90, and 70 mol %). At ≤50 mol % C20BAS, smaller quadrupolar couplings appear in the spectra, indicating the presence of U-shaped conformers. The proportion of U-shaped bolalipids increases as the amount of POPC in the membrane increases; however, the transmembrane component remains the dominant bolalipid conformation in the membrane even at 45°C and 10 mol % C20BAS, where it accounts for ∼50% of the bolalipid population. The large fraction of C20BAS transmembrane conformers, regardless of the C20BAS/POPC ratio, together with the findings from molecular mean-field theory calculations, suggests the coexistence of phase-separated bolalipid-rich domains and POPC-rich domains. A single lamellar repeat distance was observed in SAXS experiments corresponding to the average repeat spacing expected for C20BAS-and POPC-rich domains. These observations are consistent with the presence of microphase-separated domains in the mixed membrane samples that arise from POPC-C20BAS hydrophobic mismatch.
Original language | English (US) |
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Pages (from-to) | 2700-2709 |
Number of pages | 10 |
Journal | Biophysical Journal |
Volume | 97 |
Issue number | 10 |
DOIs | |
State | Published - Nov 15 2009 |
Funding
We have demonstrated using 2 H NMR spectroscopy, corroborated by SAXS and molecular theory calculations, that phase separation occurs in binary mixtures of C 20 BAS and POPC. This observation is significant for guiding the design of bolalipids that will not phase-separate from monopolar lipids in membrane-based biosensors that employ lipid mixtures of this type. These findings may also be relevant for enhancing our understanding of phase-separation phenomena arising from hydrophobic mismatch in l o / l d domains and lipid mattressing effects in IMP/lipid mixtures. This study was supported by grants from the National Institutes of Health (CA112427 and PN2EY018230 to D.H.T., and EY012049 and EY018891 to M.F.B.) and the National Science Foundation (CBET-0828046 and EE-0503943 to I.S.).
ASJC Scopus subject areas
- Biophysics