» Articles » PMID: 1504247

Comparison of the Lipid Acyl Chain Dynamics Between Small and Large Unilamellar Vesicles

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 1992 Mar 1
PMID 1504247
Citations 11
Authors
Affiliations
Soon will be listed here.
Abstract

13C NMR spin-lattice relaxation (T1) rates and 13C-1H nuclear Overhauser effects (NOEs) were measured in an identical fashion in two lipid preparations having dramatically different curvatures. The T1 times that were obtained at four magnetic field strengths were fit along with the NOEs to simple models for lipid molecular dynamics. The results indicate that phospholipid chain ordering and dynamics are virtually identical in small and large unilamellar vesicles at the time scales sampled by these 13C-NMR studies. The order parameters and reorientational correlation times that characterize the amplitudes and rates of internal acyl chain motions were equal within experimental error for the methylene segments in the middle of the chains. The only significant differences in order parameters and correlation times between the two vesicle types were small and appeared at the ends of the acyl chains. At the carbonyl end the order was slightly higher in small vesicles than large vesicles, and at the methyl end the order was slightly lower for small vesicles. This indicates that in the more planar systems the acyl chains exhibit a slightly flatter order profile than in more highly curved membranes. The use of the same experimental approach in both small and large vesicle systems provided a more reliable and accurate assessment of the effect of curvature on molecular order than has been previously obtained.

Citing Articles

A solution NMR view of lipidic cubic phases: Structure, dynamics, and beyond.

Meikle T, Keizer D, Separovic F, Yao S BBA Adv. 2023; 2:100062.

PMID: 37082598 PMC: 10074910. DOI: 10.1016/j.bbadva.2022.100062.


The Interaction of Anthracycline Based Quinone-Chelators with Model Lipid Membranes: H NMR and MD Study.

Selyutina O, Mastova A, Polyakov N Membranes (Basel). 2023; 13(1).

PMID: 36676868 PMC: 9861344. DOI: 10.3390/membranes13010061.


Effect of glycyrrhizic acid on phospholipid membranes in media with different pH.

Selyutina O, Kononova P, Polyakov N Russ Chem Bull. 2022; 70(12):2434-2439.

PMID: 35095252 PMC: 8789480. DOI: 10.1007/s11172-021-3364-3.


Lipid Composition but Not Curvature Is the Determinant Factor for the Low Molecular Mobility Observed on the Membrane of Virus-Like Vesicles.

Urbancic I, Brun J, Shrestha D, Waithe D, Eggeling C, Chojnacki J Viruses. 2018; 10(8).

PMID: 30096847 PMC: 6116177. DOI: 10.3390/v10080415.


Size-dependent ultrafast structural dynamics inside phospholipid vesicle bilayers measured with 2D IR vibrational echoes.

Kel O, Tamimi A, Fayer M Proc Natl Acad Sci U S A. 2014; 111(3):918-23.

PMID: 24395796 PMC: 3903213. DOI: 10.1073/pnas.1323110111.


References
1.
LaFleur M, Cullis P, Fine B, Bloom M . Comparison of the orientational order of lipid chains in the L alpha and HII phases. Biochemistry. 1990; 29(36):8325-33. DOI: 10.1021/bi00488a018. View

2.
Stubbs C, Kouyama T, Kinosita Jr K, Ikegami A . Effect of double bonds on the dynamic properties of the hydrocarbon region of lecithin bilayers. Biochemistry. 1981; 20(15):4257-62. DOI: 10.1021/bi00518a004. View

3.
Caffrey M, Feigenson G . Fluorescence quenching in model membranes. 3. Relationship between calcium adenosinetriphosphatase enzyme activity and the affinity of the protein for phosphatidylcholines with different acyl chain characteristics. Biochemistry. 1981; 20(7):1949-61. DOI: 10.1021/bi00510a034. View

4.
Brainard J, CORDES E . Carbon-13 nuclear magnetic resonance studies of cholesterol-egg yolk phosphatidylcholine vesicles. Biochemistry. 1981; 20(16):4607-17. DOI: 10.1021/bi00519a015. View

5.
Castle J, Hubbell W . Estimation of membrane surface potential and charge density from the phase equilibrium of a paramagnetic amphiphile. Biochemistry. 1976; 15(22):4818-31. DOI: 10.1021/bi00667a011. View