Giessner-Prettre C
Institut de Biologie Physico-Chimique, Laboratoire de Biochimie Théorique associé au C.N.R.S.,Paris, France.
J Biomol Struct Dyn. 1985 Aug;3(1):145-60. doi: 10.1080/07391102.1985.10508403.
The magnetic shielding constant of the different 13C and 1H nuclei of a deoxyribose are calculated for the C2' endo and C3' endo puckerings of the furanose ring as a function of the conformation about the C4'C5' bond. For the carbons the calculated variations are of several ppm, the C3' endo puckering corresponding in most cases to a larger shielding than the C2' endo one. For the protons the calculated variations of chemical shifts are all smaller than 1.3 ppm, that is of the order of magnitude of the variation of the geometrical shielding produced on these protons by the other units of a DNA double helix, with a change of the overall structure of the helix. The computations carried out on the deoxyribose-3' and 5' phosphates for several conformations of the phosphate group tend to show that the changes of conformation of the charged group of atoms produce chemical shift variations smaller than the two conformational parameters of the deoxyribose itself. The calculations carried out for a ribose do give the general features of the differences between the carbon and proton spectra of deoxynucleosides and nucleosides. The comparison of the measured and calculated phosphorylation shifts tend to show that the counterion contributes significantly, for some nuclei of the deoxyribose, to the shifts measured. The calculated magnitude of this polarization effect on carbon shifts suggests a tentative qualitative interpretation of carbon spectra of the ribose part of DNA double helices.
针对脱氧核糖中不同的(^{13}C)和(^{1}H)原子核,计算了呋喃糖环的(C2')内型和(C3')内型褶皱情况下,作为(C4' - C5')键构象函数的磁屏蔽常数。对于碳原子核,计算得到的变化为几个ppm,在大多数情况下,(C3')内型褶皱对应的屏蔽比(C2')内型的更大。对于质子,计算得到的化学位移变化均小于(1.3 ppm),这与DNA双螺旋的其他单元对这些质子产生的几何屏蔽变化量级相同,且随着螺旋整体结构的变化而变化。对几种磷酸基团构象下的脱氧核糖 - 3'和5'磷酸进行的计算表明,带电原子基团的构象变化产生的化学位移变化小于脱氧核糖本身的两个构象参数。对核糖进行的计算确实给出了脱氧核苷和核苷的碳谱与质子谱差异的一般特征。测量的和计算的磷酸化位移的比较倾向于表明,对于脱氧核糖的某些原子核,抗衡离子对测量的位移有显著贡献。计算得到的这种极化效应在碳位移上的大小,为DNA双螺旋核糖部分的碳谱提供了一种初步的定性解释。