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与羰基形成氢键的13C = O标记磷脂的傅里叶变换红外光谱。

Fourier transform infrared spectroscopy of 13C = O-labeled phospholipids hydrogen bonding to carbonyl groups.

作者信息

Blume A, Hübner W, Messner G

机构信息

Institut für Physikalische Chemie, Freiburg, Federal Republic of Germany.

出版信息

Biochemistry. 1988 Oct 18;27(21):8239-49. doi: 10.1021/bi00421a038.

Abstract

Fourier transform infrared spectroscopy has been used to characterize the carbonyl stretching vibration of DMPC, DMPE, DMPG, and DMPA, all labeled with 13C at the carbonyl group of the sn-2 chain. Due to the vibrational isotope effect, the 13C = O and the 12C = O vibrational bands are separated by ca. 40-43 cm-1. This frequency difference does not change when the labeling is reversed with the 13C = O group at the sn-1 chain. For lipids in organic solvents possible conformational differences between the sn-1 and sn-2 ester groups have no effect on the vibrational frequency of the C = O groups. In aqueous dispersion unlabeled phospholipids always show a superposition of two bands for the C = O vibration located at ca. 1740 and 1727 cm-1. These two bands have previously been assigned to the sn-1 and sn-2 C = O groups. FT-IR spectra of 13C-labeled phospholipids show that the vibrational bands of both, the sn-1 as well as the sn-2 C = O group, are clearly superpositions of at least two underlying components of different frequency and intensity. Band frequencies were determined by Fourier self-deconvolution and second-derivative spectroscopy. The difference between the component bands is ca. 11-17 cm-1. Again, the conformational effect as shown by reversed labeling is negligible with only 1-2 cm-1. The splitting of the C = O vibrational bands in H2O and D2O is caused by hydrogen bonding of water molecules to both C = O groups as shown by a comparison with spectra of model ester compounds in different solvents. To extract quantitative information about changes in hydration, band profiles were stimulated with Gaussian-Lorentzian functions. The chemical nature of the head group and its electronic charge have distinctive effects on the extent of hydration of the carbonyl groups. In the gel and liquid-crystalline phase of DMPC the sn-2 C = O group is more hydrated than the sn-1 C = O. This is accord with the conformation determined by X-ray analysis. In DMPG the sn-1 C = O group seems to be more accessible to water, indicating a different conformation of the glycerol backbone.

摘要

傅里叶变换红外光谱已被用于表征二肉豆蔻酰磷脂酰胆碱(DMPC)、二肉豆蔻酰磷脂酰乙醇胺(DMPE)、二肉豆蔻酰磷脂酰甘油(DMPG)和二肉豆蔻酰磷脂酸(DMPA)的羰基伸缩振动,所有这些脂质在sn-2链的羰基处均用13C标记。由于振动同位素效应,13C=O和12C=O的振动带相隔约40 - 43 cm-1。当标记反转,使13C=O基团位于sn-1链时,这种频率差异不变。对于有机溶剂中的脂质,sn-1和sn-2酯基之间可能的构象差异对C=O基团的振动频率没有影响。在水分散体系中,未标记的磷脂的C = O振动总是显示出位于约1740和1727 cm-1处的两个带的叠加。这两个带先前已被指定为sn-1和sn-2的C = O基团。13C标记的磷脂的傅里叶变换红外光谱表明,sn-1以及sn-2 C = O基团的振动带显然是至少两个不同频率和强度的基础组分的叠加。带频率通过傅里叶自去卷积和二阶导数光谱法测定。组分带之间的差异约为11 - 17 cm-1。同样,如反转标记所示的构象效应可以忽略不计,仅为1 - 2 cm-1。通过与不同溶剂中模型酯化合物的光谱比较表明,H2O和D2O中C = O振动带的分裂是由水分子与两个C = O基团的氢键作用引起的。为了提取有关水合变化的定量信息,用高斯 - 洛伦兹函数模拟带轮廓。头部基团的化学性质及其电荷对羰基的水合程度有显著影响。在DMPC的凝胶相和液晶相中,sn-2 C = O基团比sn-1 C = O基团水合程度更高。这与X射线分析确定的构象一致。在DMPG中,sn-1 C = O基团似乎更容易与水接触,表明甘油主链的构象不同。

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