McDermott M Luke, Vanselous Heather, Corcelli Steven A, Petersen Poul B
Department of Chemistry and Chemical Biology, Cornell University, Ithaca, New York, United States.
Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana, United States.
ACS Cent Sci. 2017 Jul 26;3(7):708-714. doi: 10.1021/acscentsci.7b00100. Epub 2017 May 24.
The iconic helical structure of DNA is stabilized by the solvation environment, where a change in the hydration state can lead to dramatic changes to the DNA structure. X-ray diffraction experiments at cryogenic temperatures have shown crystallographic water molecules in the minor groove of DNA, which has led to the notion of a spine of hydration of DNA. Here, chiral nonlinear vibrational spectroscopy of two DNA sequences shows that not only do such structural water molecules exist in solution at ambient conditions but that they form a chiral superstructure: a chiral spine of hydration. This is the first observation of a chiral water superstructure templated by a biomolecule. While the biological relevance of a chiral spine of hydration is unknown, the method provides a direct way to interrogate the properties of the hydration environment of DNA and water in biological settings without the use of labels.
DNA标志性的螺旋结构由溶剂化环境稳定,其中水合状态的变化可导致DNA结构发生显著变化。低温下的X射线衍射实验已表明DNA小沟中有结晶水分子,这引发了DNA水合脊的概念。在此,对两个DNA序列的手性非线性振动光谱研究表明,不仅在环境条件下溶液中存在此类结构水分子,而且它们形成了一种手性超结构:手性水合脊。这是首次观察到由生物分子模板化的手性水超结构。虽然手性水合脊的生物学相关性尚不清楚,但该方法提供了一种直接途径,可在不使用标记的情况下研究生物环境中DNA和水的水合环境特性。