Dashnau Jennifer L, Conlin Laura K, Nelson Hillary C M, Vanderkooi Jane M
Johnson Research Foundation, Department of Biochemistry and Biophysics, School of Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.
Biochim Biophys Acta. 2008 Jan;1780(1):41-50. doi: 10.1016/j.bbagen.2007.09.011. Epub 2007 Sep 26.
The OH stretch mode from water and organic hydroxyl groups have strong infrared absorption, the position of the band going to lower frequency with increased H-bonding. This band was used to study water in trehalose and glycerol solutions and in genetically modified yeast cells containing varying amounts of trehalose. Concentration-dependent changes in water structure induced by trehalose and glycerol in solution were detected, consistent with an increase of lower-energy H-bonds and interactions at the expense of higher-energy interactions. This result suggests that these molecules disrupt the water H-bond network in such a way as to strengthen molecule-water interactions while perturbing water-water interactions. The molecule-induced changes in the water H-bond network seen in solution do not translate to observable differences in yeast cells that are trehalose-deficient and trehalose-rich. Although comparison of yeast with low and high trehalose showed no observable effect on intracellular water structure, the structure of water in cells is different from that in bulk water. Cellular water exhibits a larger preference for lower-energy H-bonds or interactions over higher-energy interactions relative to that shown in bulk water. This effect is likely the result of the high concentration of biological molecules present in the cell. The ability of water to interact directly with polar groups on biological molecules may cause the preference seen for lower-energy interactions.
来自水和有机羟基的O-H伸缩振动模式具有很强的红外吸收,随着氢键作用增强,该谱带位置向低频移动。利用该谱带研究了海藻糖和甘油溶液中的水,以及含有不同含量海藻糖的转基因酵母细胞中的水。检测到溶液中海藻糖和甘油引起的水结构的浓度依赖性变化,这与低能量氢键和相互作用增加、高能量相互作用减少一致。这一结果表明,这些分子破坏了水的氢键网络,从而加强了分子与水的相互作用,同时扰乱了水与水之间的相互作用。溶液中分子诱导的水氢键网络变化在缺乏海藻糖和富含海藻糖的酵母细胞中并未转化为可观察到的差异。尽管对低海藻糖和高海藻糖酵母的比较未显示对细胞内水结构有可观察到的影响,但细胞内水的结构与大量水中的结构不同。相对于大量水,细胞内水对低能量氢键或相互作用的偏好大于对高能量相互作用的偏好。这种效应可能是细胞中生物分子高浓度的结果。水与生物分子上极性基团直接相互作用的能力可能导致了对低能量相互作用的偏好。