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COMPARATIVE QSAR STUDY ON HYDROXYL RADICAL REACTIVITY WITH UNSATURATED HYDROCARBONS: PLS VERSUS MLR

机译:非饱和烃与羟基自由基反应性的QSAR对比研究:PLS与MLR

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A reliable QSAR model for estimating the reaction rate constants of unsaturated hydrocarbons with hydroxyl radical has been developed by application of the PLS (partial least squares projections to latent structures) multivariate technique and a large set of 18 empirical variables and calculated quantum chemical or structural descriptors. It was found that five calculated quantum chemical and structural descriptors have a pronounced influence on the reaction rate constants of unsaturated hydrocarbons with hydroxyl radical: energy of the highest occupied molecular orbital (E_(HOMO)), hardness (HA), average number of alkyl substitutents per unsaturated bond (n_(Alk)), energy of the lowest unoccupied molecular orbital (E_(LUMO)) and number of carbon atoms in unsaturated bonds (n_C). The derived QSAR model was rationalized within the framework of the frontier molecular orbital (FMO) theory and by thermodynamic arguments. In addition, a QSAR model has been derived using multiple linear regression (MLR) and a stepwise procedure with the same set of measured and calculated descriptors in order to assess the advantages and limitations of both statistical methods. Finally, a comparison was made between estimates from this study and the estimates from QSAR models published earlier, i.e. Atkinson's fragment contribution method and the non-linear QSAR model of Klamt based on calculated quantum chemical descriptors. This comparison has provided important information on the performance of individual models as well as on their advantages and limitations. It can be safely concluded that the PLS model derived in this study is the method of choice for future reliable estimation of log k_(OH) data for unsaturated chemicals.
机译:通过应用PLS(对潜在结构的偏最小二乘投影)多元技术和18个经验变量的大集合以及计算出的量子化学或结构描述符,已经开发出一种可靠的QSAR模型,用于估计不饱和烃与羟基自由基的反应速率常数。 。发现五个计算的量子化学和结构描述符对具有羟基的不饱和烃的反应速率常数有显着影响:最高占据分子轨道的能量(E_(HOMO)),硬度(HA),平均烷基数每个不饱和键的取代基(n_(Alk)),最低未占据分子轨道的能量(E_(LUMO))和不饱和键中的碳原子数(n_C)。在前沿分子轨道(FMO)理论的框架内并通过热力学论证,对导出的QSAR模型进行了合理化处理。此外,已经使用多元线性回归(MLR)和具有相同组已测量和计算出的描述符的分步程序导出了QSAR模型,以便评估两种统计方法的优点和局限性。最后,将本研究的估计值与较早发布的QSAR模型的估计值进行了比较,即基于计算的量子化学描述符的Atkinson碎片贡献方法和Klamt的非线性QSAR模型。这种比较提供了有关各个模型的性能及其优势和局限性的重要信息。可以肯定地得出结论,本研究中得出的PLS模型是未来可靠估计不饱和化学品log k_(OH)数据的选择方法。

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