Inoue Ken-Ichi, Singh Prashant C, Nihonyanagi Satoshi, Yamaguchi Shoichi, Tahara Tahei
Molecular Spectroscopy Laboratory, RIKEN , 2-1 Hirosawa, Wako, Saitama 351-1098, Japan.
Ultrafast Spectroscopy Research Team, RIKEN Center for Advanced Photonics (RAP) , 2-1 Hirosawa, Wako, Saitama 351-1098, Japan.
J Phys Chem Lett. 2017 Oct 19;8(20):5160-5165. doi: 10.1021/acs.jpclett.7b02057. Epub 2017 Oct 9.
Molecular-level elucidation of hydration at biological membrane interfaces is of great importance for understanding biological processes. We studied ultrafast hydrogen-bond dynamics at a zwitterionic phosphatidylcholine/water interface by two-dimensional heterodyne-detected vibrational sum frequency generation (2D HD-VSFG) spectroscopy. The obtained 2D spectra confirm that the anionic phosphate and cationic choline sites are individually hydrated at the interface. Furthermore, the data show that the dynamics of water at the zwitterionic lipid interface is not a simple sum of the dynamics of the water species that hydrate to the separate phosphate and choline. The center line slope (CLS) analysis of the 2D spectra reveals that ultrafast hydrogen-bond fluctuation is not significantly suppressed around the phosphate at the zwitterionic lipid interface, which makes the hydrogen-bond dynamics look similar to that of the bulk water. The present study indicates that the hydrogen-bond dynamics at membrane interfaces is not determined only by the hydrogen bond to a specific site of the interface but is largely dependent on the water dynamics in the vicinity and other nearby moieties, through the hydrogen-bond network.
从分子水平阐明生物膜界面的水合作用对于理解生物过程至关重要。我们通过二维外差检测振动和频产生(2D HD-VSFG)光谱研究了两性离子磷脂酰胆碱/水界面的超快氢键动力学。所获得的二维光谱证实,阴离子磷酸根和阳离子胆碱位点在界面处分别被水合。此外,数据表明两性离子脂质界面处水的动力学不是水合到单独的磷酸根和胆碱的水物种动力学的简单总和。二维光谱的中心线斜率(CLS)分析表明,两性离子脂质界面处磷酸根周围的超快氢键波动没有受到显著抑制,这使得氢键动力学看起来与 bulk water 的相似。本研究表明,膜界面处的氢键动力学不仅由与界面特定位点的氢键决定,还很大程度上取决于附近的水动力学和其他附近的部分,通过氢键网络。