Kim Jongjoo, Lu Wenyun, Qiu Weihong, Wang Lijuan, Caffrey Martin, Zhong Dongping
Department of Physics, Program of Biophysics, The Ohio State University, Columbus, Ohio 43210, USA.
J Phys Chem B. 2006 Nov 2;110(43):21994-2000. doi: 10.1021/jp062806c.
We report here our studies of hydration dynamics of confined water in aqueous nanochannels (approximately 50 A) of the lipidic cubic phase. By systematically anchoring the hydrocarbon tails of a series of tryptophan-alkyl ester probes into the lipid bilayer, we mapped out with femtosecond resolution the profile of water motions across the nanochannel. Three distinct time scales were observed, revealing discrete channel water structures. The interfacial water at the lipid surface is well-ordered, and the relaxation dynamics occurs in approximately 100-150 ps. These dynamically rigid water molecules are crucial for global structural stability of lipid bilayers and for stabilization of anchored biomolecules in membranes. The adjacent water layers near the lipid interface are hydrogen-bonded networks and the dynamical relaxation takes 10-15 ps. This quasi-bound water motion, similar to the typical protein surface hydration relaxation, facilitates conformation flexibility for biological recognition and function. The water near the channel center is bulklike, and the dynamics is ultrafast in less than 1 ps. These water molecules freely transport biomolecules near the channel center. The corresponding orientational relaxation at these three typical locations is well correlated with the hydration dynamics and local dynamic rigidity. These results reveal unique water structures and dynamical motions in nanoconfinements, which is critical to the understanding of nanoscopic biological activities and nanomaterial properties.
我们在此报告我们对脂质立方相水纳米通道(约50埃)中受限水的水合动力学的研究。通过系统地将一系列色氨酸 - 烷基酯探针的烃尾锚定到脂质双层中,我们以飞秒分辨率绘制了纳米通道内水运动的分布图。观察到三个不同的时间尺度,揭示了离散的通道水结构。脂质表面的界面水排列有序,弛豫动力学发生在大约100 - 150皮秒。这些动态刚性水分子对于脂质双层的整体结构稳定性以及膜中锚定生物分子的稳定至关重要。脂质界面附近的相邻水层是氢键网络,动态弛豫需要10 - 15皮秒。这种准束缚水运动类似于典型的蛋白质表面水合弛豫,有助于生物识别和功能的构象灵活性。通道中心附近的水类似本体水,动力学在不到1皮秒内超快。这些水分子在通道中心附近自由运输生物分子。这三个典型位置的相应取向弛豫与水合动力学和局部动态刚性密切相关。这些结果揭示了纳米限域中独特的水结构和动态运动,这对于理解纳米级生物活性和纳米材料特性至关重要。