A P-31-NMR SPIN-LATTICE RELAXATION AND P-31(H-1) NUCLEAR OVERHAUSER EFFECT STUDY OF SONICATED SMALL UNILAMELLAR PHOSPHATIDYLCHOLINE VESICLES

被引:11
作者
TAUSKELA, JS [1 ]
THOMPSON, M [1 ]
机构
[1] UNIV TORONTO, DEPT CHEM, TORONTO M5S 1A1, ONTARIO, CANADA
基金
加拿大自然科学与工程研究理事会;
关键词
PHOSPHATIDYLCHOLINE; NMR; P-31-; NUCLEAR OVERHAUSER EFFECT;
D O I
10.1016/0005-2736(92)90142-9
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The motional properties of the inner and outer monolayer headgroups of egg phosphatidylcholine (PC) small unilamellar vesicles (SUV) were investigated by P-31-NMR temperature-dependent spin-lattice relaxation time constant (T1) and P-31{H-1} nuclear Overhauser effect (NOE) analyses. Three different aspects of the dynamics of PC headgroups were investigated using the T1 analysis. First, differences in the dynamics of the headgroup region of both surfaces of the SUV were measured after application of a chemical shift reagent, PrCl3, to either the extra- or intravesicular volumes. Second, the ability of the T1 experiment to resolve the different motional states was evaluated in the absence of shift reagent. Third, comparison between correlation times obtained from a resonance frequency dependent P-31{H-1} NOE analysis allowed a determination of the applicability of a simplified motional model to describe phosphorus dipolar relaxation. Temperature-dependent P-31-NMR T1 values obtained for the individual monolayers at 81.0 and 162.0 MHz were modelled assuming that phosphorus undergoes both a dipolar and an anisotropic chemical shielding relaxation mechanism, each being described by the same correlation time, tau. At 162.0 MHz, the position of the T1 minimum for the inner monolayer was 9-degrees higher than that of the outer region, indicating a higher level of motional restriction for the inner leaflet, in agreement with P-31{H-1} NOE measurements. The 162.0 MHz T1 profile of the combined SUV monolayers exhibited a smooth minimum located at the midpoint of the monolayer minima positions, effectively masking the presence of the individual surfaces. P-31{H-1} NOE results obtained at 32.3, 81.0 and 162.0 MHz did not agree with those predicted from a simple dipolar relaxation model. These results suggest a T1-temperature method can neither discriminate two or more closely related motional time scales in a heterogeneous environment (such as incorporation of protein into lipid bilayers) nor allow accurate determination of the correlation time at the position of the minimum when the dipolar relaxation rate makes a significant contribution to the overall rate.
引用
收藏
页码:137 / 146
页数:10
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