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Reliable vibrational wavenumbers for C=O and N-H stretchings of isolated and hydrogen-bonded nucleic acid bases

机译:分离和氢键合核酸碱基的C = O和N-H延伸的可靠振动波数

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The accurate prediction of vibrational wavenumbers for functional groups involved in hydrogen-bonded bridges remains an important challenge for computational spectroscopy. For the specific case of the C=O and N-H stretching modes of nucleobases and their oligomers, the paucity of experimental reference values needs to be compensated by reliable computational data, which require the use of approaches going beyond the standard harmonic oscillator model. Test computations performed for model systems (formamide, acetamide and their cyclic homodimers) in the framework of the second order vibrational perturbation theory (VPT2) confirmed that anharmonic corrections can be safely computed by global hybrid (GHF) or double hybrid (DHF) functionals, whereas the harmonic part is particularly challenging. As a matter of fact, GHFs perform quite poorly and even DHFs, while fully satisfactory for C=O stretchings, face unexpected difficulties when dealing with N-H stretchings. On these grounds, a linear regression for N-H stretchings has been obtained and validated for the heterodimers formed by 4-aminopyrimidine with 6-methyl-4-pyrimidinone (4APM-M4PMN) and by uracil with water. In view of the good performance of this computational model, we have built a training set of B2PLYP-D3/maug-cc-pVTZ harmonic wavenumbers (including linear regression scaling for N-H) for six-different uracil dimers and a validation set including 4APM-M4PMN, one of the most stable hydrogenbonded adenine homodimers, as well as the adenine-uracil, adenine-thymine, guanine-cytosine and adenine-4-thiouracil heterodimers. Because of the unfavourable scaling of DHF harmonic wavenumbers with the dimensions of the investigated systems, we have optimized a linear regression of B3LYP-D3/ N07D harmonic wavenumbers for the training set, which has been next checked against the validation set. This relatively cheap model, which shows very good agreement with experimental data (average errors of about 10 cm(-1)), paves the route toward a reliable analysis of spectroscopic signatures for larger polynucleotides.
机译:氢键桥中涉及的官能团的振动波数的准确预测仍然是计算光谱学的重要挑战。对于核碱基及其寡聚体的C = O和N-H延伸模式的特定情况,实验参考值的不足需要通过可靠的计算数据来补偿,这需要使用超出标准谐波振荡器模型的方法。在二阶振动扰动理论(VPT2)框架内对模型系统(甲酰胺,乙酰胺及其环状同二聚体)进行的测试计算证实,可以通过全局混合(GHF)或双混合(DHF)功能安全地计算非谐校正,而谐波部分则特别具有挑战性。事实上,GHF的性能相当差,甚至DHF都可以满足C = O拉伸,但在处理N-H拉伸时会遇到意想不到的困难。基于这些理由,已经获得了N-H拉伸的线性回归,并验证了4-氨基嘧啶与6-甲基-4-嘧啶酮(4APM-M4PMN)和尿嘧啶与水形成的异二聚体。鉴于此计算模型的良好性能,我们针对六种不同的尿嘧啶二聚体建立了一个B2PLYP-D3 / maug-cc-pVTZ谐波波数训练集(包括NH的线性回归定标)和一个包含4APM- M4PMN是最稳定的氢键腺嘌呤同二聚体之一,以及腺嘌呤-尿嘧啶,腺嘌呤-胸腺嘧啶,鸟嘌呤-胞嘧啶和腺嘌呤-4-硫尿嘧啶异二聚体。由于DHF谐波波数的缩放比例不利于所研究系统的尺寸,我们针对训练集优化了B3LYP-D3 / N07D谐波波数的线性回归,然后针对验证集进行了检验。这种相对便宜的模型显示出与实验数据非常好的一致性(平均误差约为10 cm(-1)),为通往可靠的较大多核苷酸光谱特征分析提供了途径。

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