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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Echo-Detected Electron Paramagnetic Resonance Spectra of Spin-Labeled Lipids in Membrane Model Systems
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Echo-Detected Electron Paramagnetic Resonance Spectra of Spin-Labeled Lipids in Membrane Model Systems

机译:膜模型系统中自旋标记脂质的回波检测电子顺磁共振谱

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The dynamics of spin-labeled lipid chains in the low-temperature phases of dipalmitoyl phosphatidylcholine (DPPC) membranes, with and without equimolar cholesterol, have been investigated by pulsed electron paramagnetic resonance (EPR) spectroscopy. Echo-detected spectra from the two-pulse, primary spin-echo (pulse sequence: π/2-τ-π-τ-echo) are used to detect rapid angular motions, on the time scale of the phase memory time (T2M) that is in the nanosecond regime. Echo-detected spectra from the three-pulse, stimulated spin-echo (pulse sequence: π/2-τ-π/2-T-π/2-τ-echo) are used to detect slow angular motions, on the time scale of the spin-lattice relaxation time (T1) that is in the microsecond regime. Spectra recorded at very low temperature (77 K) are used to correct the two-pulse echo spectra for instantaneous diffusion that arises from dipolar spin-spin interactions between different spin labels. Echo-detected inversion recovery spectra are used to correct the three-pulse echo spectra for intrinsic spin-lattice relaxation and large-scale spectral diffusion induced by nitrogen nuclear spin flips. The dependence of the echo-detected spectral line shapes on the two time delays, τ and T, can be simulated adequately by using a simple two-state model to represent the small-amplitude librational motions in the low-temperature membrane phases. The fast librational motion has isotropic character, no singly defined direction of the librational axis, and is segmental in nature, depending on chain position and also on the presence of cholesterol. The slow librational motion is of a more global, cooperative nature, being independent of chain position and cholesterol content.
机译:已经通过脉冲电子顺磁共振(EPR)光谱研究了具有和不具有等摩尔胆固醇的二棕榈酰磷脂酰胆碱(DPPC)膜的低温相中自旋标记脂质链的动力学。在相位存储时间(T2M)的时间尺度上,使用来自两个脉冲的主自旋回波(脉冲序列:π/2-τ-π-τ-回波)的回波检测光谱来检测快速角运动。那是纳秒级的来自三脉冲受激自旋回波(脉冲序列:π/2-τ-π/2-T-π/2-τ回波)的回波检测光谱用于检测时标上的慢角运动自旋晶格弛豫时间(T1)的微秒状态。在非常低的温度(77 K)下记录的光谱用于校正两脉冲回波光谱的瞬时扩散,该瞬时扩散是由不同自旋标记之间的偶极自旋-自旋相互作用引起的。回波检测的反演恢复谱用于校正三脉冲回波谱,以解决固有自旋晶格弛豫和氮核自旋翻转引起的大规模谱扩散。通过使用简单的二态模型来表示低温膜相中的小振幅自由运动,可以充分模拟回波检测到的谱线形状对两个时间延迟τ和T的依赖性。快速的自由运动具有各向同性的特性,没有自由定义的自由轴方向,并且本质上是分段的,取决于链的位置以及胆固醇的存在。缓慢的解放运动具有更全面的合作性质,不受链位置和胆固醇含量的影响。

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