Bruening Eva M, Schauss Jakob, Siebert Torsten, Fingerhut Benjamin P, Elsaesser Thomas
Max-Born-Institut für Nichtlineare Optik und Kurzzeitspektroskopie , Max-Born-Str. 2a, D-12489 Berlin, Germany.
J Phys Chem Lett. 2018 Feb 1;9(3):583-587. doi: 10.1021/acs.jpclett.7b03314. Epub 2018 Jan 19.
The equilibrium structure of the RNA sugar-phosphate backbone and its hydration shell is distinctly different from hydrated DNA. Applying femtosecond two-dimensional infrared (2D-IR) spectroscopy in a range from 950 to 1300 cm, we elucidate the character, dynamics, and couplings of backbone modes of a double-stranded RNA A-helix geometry in its aqueous environment. The 2D-IR spectra display a greater number of backbone modes than for DNA, with distinctly different lineshapes of diagonal peaks. Phosphate-ribose interactions and local hydration structures are reflected in the complex coupling pattern of RNA modes. Interactions with the fluctuating water shell give rise to spectral diffusion on a 300 fs time scale, leading to a quasi-homogeneous line shape of the symmetric (PO) stretching mode of the strongly hydrated phosphate groups. The RNA results are benchmarked by 2D-IR spectra of DNA oligomers in water and analyzed by molecular dynamics and quantum mechanical molecular mechanics simulations.
RNA糖磷酸骨架及其水化层的平衡结构与水化DNA明显不同。我们在950至1300厘米的范围内应用飞秒二维红外(2D-IR)光谱,阐明了双链RNA A-螺旋结构在其水环境中骨架模式的特征、动力学和耦合情况。与DNA相比,2D-IR光谱显示出更多的骨架模式,其对角峰的线形明显不同。磷酸-核糖相互作用和局部水化结构反映在RNA模式的复杂耦合模式中。与波动水层的相互作用导致在300飞秒时间尺度上的光谱扩散,从而使强水化磷酸基团的对称(PO)拉伸模式呈现准均匀线形。通过水中DNA寡聚物的2D-IR光谱对RNA的结果进行了基准测试,并通过分子动力学和量子力学分子力学模拟进行了分析。