Saint-Petersburg State University , 199034 St. Petersburg, Russia.
Institut für Festkörperphysik, Technische Universität Dresden , 01062 Dresden, Germany.
J Phys Chem B. 2017 Mar 23;121(11):2400-2406. doi: 10.1021/acs.jpcb.6b11218. Epub 2017 Mar 13.
The rapidly developing field of bionanotechnology requires detailed knowledge of the mechanisms of interaction between inorganic matter and biomolecules. Under conditions different from those in an aqueous solution, however, the chemistry of these systems is elusive and may differ dramatically from their interactions in vitro and in vivo. Here, we report for the first time a photoemission study of a metal silver-DNA interface, formed in vacuo, in comparison with DNA-Ag and fluorescent DNA-Ag complexes formed in solution. The high-resolution photoelectron spectra reveal that in vacuo silver atoms interact mainly with oxygen atoms of the phosphodiester bond and deoxyribose in DNA, in contrast to the behavior of silver ions, which interact preferentially with the nitrogen atoms of the bases. This offers new insight into the mechanism of DNA metallization, which is of importance in creating metal-bio interfaces for nanotechnology applications.
生物纳米技术领域的迅速发展需要深入了解无机物与生物分子之间相互作用的机制。然而,在不同于水溶液的条件下,这些体系的化学性质难以捉摸,并且可能与其在体外和体内的相互作用有很大的不同。在这里,我们首次报道了在真空中形成的金属银-DNA 界面的光电子能谱研究,与溶液中形成的 DNA-Ag 和荧光 DNA-Ag 复合物进行了比较。高分辨率光电子能谱表明,在真空中银原子主要与 DNA 中磷酸二酯键和脱氧核糖的氧原子相互作用,与银离子的行为形成对比,银离子优先与碱基的氮原子相互作用。这为 DNA 金属化的机制提供了新的见解,这对于为纳米技术应用创造金属-生物界面非常重要。