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Resolution of phospholipid conformational heterogeneity in model membranes by spin-label EPR and frequency-domain fluorescence spectroscopy.

机译:通过自旋标记EPR和频域荧光光谱法解析模型膜中磷脂的构象异质性。

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摘要

We have utilized both fluorescent and nitroxide derivatives of stearic acid as probes of membrane structural heterogeneity in phospholipid vesicles under physiological conditions, as well as conditions of varying ionic strengths and temperatures where spectral heterogeneity has been previously observed and attributed to multiple ionization states of the probes. To identify the source of this spectral heterogeneity, we have utilized complimentary measurements of the relaxation properties (lifetimes) and motion of both (a) spin labeled and anthroyloxy derivatives of stearic acid (i.e., SASL and AS) and (b) a diphenylhexatriene derivative of phosphatidylcholine (DPH-PC) in single component membranes containing dimyristoylphosphatidylcholine (DMPC). We use an 15N stearic-acid spin label for optimal sensitivity to membrane heterogeneity. The lifetime and dynamics of the fluorescent phospholipid analogue DPH-PC (with no ionizable groups over this pH range) were compared with those of AS, allowing us to discriminate between changes in membrane structure and the ionization of the label. The quantum yield and rotational dynamics of DPH-PC are independent of pH, indicating that changes in pH do not affect the conformation of the host phospholipids. However, both EPR spectra of SASL and the lifetime or dynamics of AS are affected profoundly by changes in solution pH. The apparent pKa's of these two probes in DMPC membranes were determined to be near pH 6.3, implying that at physiological pH and ionic strength these stearic-acid labels exist predominantly as a single ionized population in membranes. Therefore, the observed temperature- and ionic-strength-dependent alterations in the spectra of SASL as well as the lifetime or dynamics of AS in DMPC membranes at neutral pH are due to changes in membrane structure rather than the ionization of the probes. The possibility that ionic gradients across biological membranes induce alterations in phospholipid structures, thereby modulating lipid-protein interactions is discussed.
机译:我们已经利用了硬脂酸的荧光和一氧化氮衍生物作为生理条件下磷脂囊泡中膜结构异质性的探针,以及先前观察到光谱异质性并归因于探针多种电离状态的离子强度和温度变化的条件。为了确定这种光谱异质性的来源,我们利用了(a)硬脂酸的自旋标记和蒽氧基衍生物(即SASL和AS)和(b)二苯基己三烯衍生物的弛豫特性(寿命)和运动的互补测量含二肉豆蔻酰基磷脂酰胆碱(DMPC)的单组分膜中的磷脂酰胆碱(DPH-PC)含量。我们使用15N硬脂酸自旋标签,以实现对膜异质性的最佳敏感性。将荧光磷脂类似物DPH-PC(在此pH范围内无可电离基团)的寿命和动力学与AS进行了比较,从而使我们能够区分膜结构的变化和标记物的电离。 DPH-PC的量子产率和旋转动力学与pH无关,表明pH的变化不会影响宿主磷脂的构象。但是,溶液pH的变化会严重影响SASL的EPR光谱和AS的寿命或动力学。确定这两种探针在DMPC膜中的表观pKa值接近pH 6.3,这意味着在生理pH和离子强度下,这些硬脂酸标记主要以单个离子化形式存在于膜中。因此,观察到的SASL光谱中依赖于温度和离子强度的变化以及DMPC膜在中性pH下AS的寿命或动力学是由于膜结构的变化而不是探针的电离引起的。讨论了跨生物膜的离子梯度诱导磷脂结构改变,从而调节脂质-蛋白质相互作用的可能性。

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