Chatterjee Subhrangsu, Pathmasiri Wimal, Plashkevych Oleksandr, Honcharenko Dmytro, Varghese Oommen P, Maiti Mohitosh, Chattopadhyaya Jyoti
Department of Bioorganic Chemistry, Biomedical Center, Uppsala University, Sweden.
Org Biomol Chem. 2006 May 7;4(9):1675-86. doi: 10.1039/b601460g. Epub 2006 Mar 30.
We here show that the pKa (error limit: 0.01 to 0.03 pKa unit) of a nucleobase in a nucleotide can be modulated by the chemical nature of the 2'-substituent at the sugar moiety. This has been evidenced by the measurement of nucleobase pKa in 47 different model nucleoside 3',5'-bis- and 3'-mono-ethylphosphates. The fact that the electronic character of each of the 2'-substituents (Fig. 1) alters the chemical shift of the H2' sugar proton, and also alters the pKa of the nucleobase in the nucleotides has been evidenced by a correlation plot of pKa of N3 of pyrimidine (T/C/U) or pKa of N7 of 9-guaninyl with the corresponding deltaH2' chemical shifts at the neutral pH, which shows linear correlation with high Pearson's correlation coefficients (R = 0.85-0.97). That this modulation of the pKa of the nucleobase by a 2'-substituent is a through-bond as well as through-space effect has been proven by ab initio determined pKa estimation. Interestingly, experimental pKas of nucleobases from NMR titration and the calculated pKas (by ab initio calculations utilizing closed shell HF 6-31G** basis set) are linearly correlated with R = 0.98. It has also been observed that the difference of ground and protonated/de-protonated HOMO orbital energies (DeltaHOMO, a.u.) for the nucleobases (A/G/C/T/U) are well correlated with their pK(a)s in different 2'-substituted 3',5'-bis-ethylphosphate analogs suggesting that only the orbital energy of HOMO can be successfully used to predict the modulation of the chemical reactivity of the nucleobase by the 2'-substituent. It has also been demonstrated that pKa values of nucleobases in 3',5'-bis-ethylphosphates (Table 1) are well correlated with the change in dipole moment for the respective nucleobases after protonation or de-protonation. This work thus unambiguously shows that alteration of the thermodynamic stability (Tm) of the donor-acceptor complexes [ref. 20], as found with various 2'-modified duplexes in the antisense, siRNA or in triplexes by many workers in the field, is a result of alteration of the pseudoaromatic character of the nucleobases engineered by alteration of the chemical nature of the 2'-substitution.
我们在此表明,核苷酸中核碱基的pKa(误差范围:0.01至0.03个pKa单位)可通过糖部分2'-取代基的化学性质进行调节。这已通过测量47种不同的模型核苷3',5'-双磷酸酯和3'-单磷酸酯中核碱基的pKa得到证实。2'-取代基(图1)的电子特性改变了H2'糖质子的化学位移,并且还改变了核苷酸中核碱基的pKa,这一事实已通过嘧啶N3(T/C/U)的pKa或9-鸟嘌呤N7的pKa与中性pH下相应的δH2'化学位移的相关图得到证实,该图显示出具有高皮尔逊相关系数(R = 0.85 - 0.97)的线性相关性。通过从头算确定的pKa估计已证明,2'-取代基对核碱基pKa的这种调节是一种通过键以及通过空间的效应。有趣的是,来自NMR滴定的核碱基实验pKa与计算的pKa(通过使用闭壳HF 6 - 31G**基组的从头算计算)具有线性相关性,R = 0.98。还观察到,核碱基(A/G/C/T/U)的基态与质子化/去质子化HOMO轨道能量之差(ΔHOMO,原子单位)与其在不同2'-取代的3',5'-双磷酸酯类似物中的pK(a)s具有良好的相关性,这表明只有HOMO的轨道能量才能成功用于预测2'-取代基对核碱基化学反应性的调节。还已证明,3',5'-双磷酸酯中核碱基的pKa值(表1)与各自核碱基质子化或去质子化后偶极矩的变化具有良好的相关性。因此,这项工作明确表明,供体 - 受体复合物[参考文献20]的热力学稳定性(Tm)的改变,正如该领域许多研究人员在反义、siRNA或三链体中各种2'-修饰的双链体中所发现的那样,是由2'-取代化学性质改变所设计的核碱基假芳香性改变的结果。