碳-13核磁共振化学位移计算方案应用于刚性三萜分子

Rênica Alves de Morais Rocha, Thaís Forest Giacomello, A. M. J. C. Neto, G. S. Mota, F. L. Costa
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摘要

核磁共振波谱是获得复杂分子三维结构的最强大的实验技术之一,主要用于分析有机化合物的相对构型和绝对构型。因此,它已成为化学领域中最有前途的工具之一。从理论的角度来看,已经开发了先进的计算方案来计算核磁共振,主要是氢-1和碳-13,孤立分子的参数,其中忽略了环境的影响。这些影响主要与此类系统固有的大尺寸有关,这使得传统的从头计算理论要么非常需要计算,要么甚至令人望而却步。尽管目前光谱学技术取得了进步,但在文献中,对天然产物错误建立的结构进行修正的例子仍然很常见。因此,仍然有必要发展量子化学方案,以帮助正确确定这些化合物的结构。这项工作旨在测试一种基于线性回归的通用比例因子,用于计算刚性分子的碳-13核磁共振化学位移,该方法计算成本低,精度高,有助于确定天然产物的结构。碳-13的化学位移采用mPW1PW91/3-21G水平的理论计算。换算后的化学位移为:1.14x(计算化学位移)-4.71。为了测试所创建的比例因子在立体化学相关问题中的应用,我们研究了其区分五环三萜区域异构体的能力。我们的研究结果表明,应用于计算的mPW1PW91/3-21G//PM7水平的理论,以及比例因子的使用,是一种高效和低成本的工具,可以替代计算要求的方法,通常用于计算碳-13核磁共振化学位移。
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Carbon-13 Nuclear Magnetic Resonance Chemical Shift Calculation Protocol Applied to Rigid Triterpenes Molecules
Nuclear magnetic resonance spectroscopy is one of the most powerful experimental techniques for obtaining three-dimensional structures of complex molecules, mainly for the analysis of the relative and absolute configurations of organic compounds. For this reason, this has become one of the most promising tools in the field of chemistry. From the theoretical point of view, advanced computational protocols have been developed for calculating nuclear magnetic resonance, mainly hydrogen-1 and carbon-13, parameters of isolated molecules, in which the environmental effects are neglected. These effects are predominantly related to the inherently large size of such systems, making conventional ab initio theories either very computationally demanding or even prohibitive. Despite the current advances in spectroscopic techniques, instances of revision of structures erroneously established for natural products are still common in the literature. Therefore, it is still necessary the development of quantum-chemical protocols that may assist in the correct structural determination of these compounds. This work aimed to test a universal scaling factor, based on a linear regression, for the calculation of carbon-13 nuclear magnetic resonance chemical shifts for rigid molecules, which has low computational cost and great accuracy to aid in the structural determination of natural products. The carbon-13 chemical shifts were calculated using the mPW1PW91/3-21G level of theory. Scaled chemical shifts were obtained according to the relation: 1.14x(calculated chemical shifts)–4.71. To test the application of the created scaling factor to problems related to stereochemistry, we investigated its ability to differentiate pentacyclic triterpenes regioisomers. Our results show that the mPW1PW91/3-21G//PM7 level of theory applied to the calculations, together with the use of the scaling factor, is an efficient and low-cost tool as an alternative to computational requirement approaches, usually applied to the calculation of carbon-13 nuclear magnetic resonance chemical shifts.
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