Funasaki Noriaki, Fukuba Makoto, Hattori Takashi, Ishikawa Seiji, Okuno Takashi, Hirota Shun
Department of Physical Chemistry and 21st Century COE Program, Kyoto Pharmaceutical University, Misasagi, Yamashina-ku, Kyoto 607-8414, Japan.
Chem Phys Lipids. 2006 Jul;142(1-2):43-57. doi: 10.1016/j.chemphyslip.2006.02.025. Epub 2006 Mar 29.
The self-association of sodium taurodeoxycholate (NaTDC) and a zwitterionic derivative of cholic acid (CHAPS) in deuterium oxide was investigated by one- and two-dimensional nuclear magnetic resonance spectroscopy (NMR) spectroscopy. Analysis of the concentration dependence of the chemical shifts of several protons suggested that NaTDC and CHAPS form nonamers and heptamers, respectively, as well as dimer. The equilibrium constants of dimerization and the micellar aggregation numbers are close to the literature values. From the intensities of intermolecular cross-peaks in the nuclear Overhauser effect spectroscopy (NOESY) and rotating frame nuclear Overhauser effect spectroscopy (ROESY) spectra of NaTDC and CHAPS micellar solutions, partial structures of their micelles were estimated. The CHAPS micelle consists mainly of the back-to-back association, similarly to taurocholate (NaTC). However, the NaTDC micelle consists of the back-to-face association, because the face of NaTDC is rather hydrophobic. Furthermore, the back of bile molecules forms a convex plane and the face forms a concave plane. The back-to-face structure of NaTDC will be stabilized by a close contact between these planes. The chemical shift changes of several protons of CHAPS and NaTC in the micellar state are close to each other, but are different from those of NaTDC. This finding is consistent with the difference in their micellar structures.
通过一维和二维核磁共振波谱法(NMR)研究了牛磺脱氧胆酸钠(NaTDC)与胆酸两性离子衍生物(CHAPS)在重水中的自缔合情况。对几个质子化学位移的浓度依赖性分析表明,NaTDC和CHAPS分别形成九聚体、七聚体以及二聚体。二聚化平衡常数和胶束聚集数与文献值相近。根据NaTDC和CHAPS胶束溶液的核Overhauser效应光谱(NOESY)和旋转坐标系核Overhauser效应光谱(ROESY)中分子间交叉峰的强度,估算了它们胶束的部分结构。与牛磺胆酸钠(NaTC)类似,CHAPS胶束主要由背对背缔合组成。然而,NaTDC胶束由面对面缔合组成,因为NaTDC的表面相当疏水。此外,胆汁分子的背面形成一个凸面,而表面形成一个凹面。NaTDC的面对面结构将通过这些平面之间的紧密接触而得以稳定。处于胶束状态时,CHAPS和NaTC的几个质子的化学位移变化彼此接近,但与NaTDC的不同。这一发现与它们胶束结构的差异一致。