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Improved Quantitative Structure-Activity Relationship Models to Predict Antioxidant Activity of Flavonoids in Chemical Enzymatic and Cellular Systems

机译:改进的定量构效关系模型可预测化学酶和细胞系统中类黄酮的抗氧化活性

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摘要

Quantitative structure-activity relationship (QSAR) models are useful in understanding how chemical structure relates to the biological activity of natural and synthetic chemicals and for design of newer and better therapeutics. In the present study, 46 flavonoids and related polyphenols were evaluated for direct/indirect antioxidant activity in three different assay systems of increasing complexity (chemical, enzymatic, and intact phagocytes). Based on these data, two different QSAR models were developed using i) physicochemical and structural (PC&S) descriptors to generate multiparameter partial least squares (PLS) regression equations derived from optimized molecular structures of the tested compounds and ii) a partial 3D comparison of the 46 compounds with local fingerprints obtained from fragments of the molecules by the frontal polygon (FP) method. We obtained much higher QSAR correlation coefficients (r) for flavonoid end-point antioxidant activity in all 3 assay systems using the FP method (0.966, 0.948, and 0.965 for datasets in evaluated in the biochemical, enzymatic, and whole cells assay systems, respectively). Furthermore, high leave-one-out cross-validation coefficients (q2) of 0.907, 0.821, and 0.897 for these datasets, respectively, indicated enhanced predictive ability and robustness of the model. Using the FP method, structural fragments (submolecules) responsible for the end-point antioxidant activity in the three assay systems were also identified. To our knowledge, this is the first QSAR model derived for description of flavonoid direct/indirect antioxidant effects in a cellular system, and this model could form the basis for further drug development of flavonoid-like antioxidant compounds with therapeutic potential.
机译:定量构效关系(QSAR)模型有助于理解化学结构与天然和合成化学物质的生物学活性之间的关系,以及用于设计更新更好的治疗方法。在本研究中,在复杂性不断提高的三种不同测定系统(化学,酶和吞噬细胞)中评估了46种类黄酮和相关多酚的直接/间接抗氧化剂活性。基于这些数据,使用以下方法开发了两个不同的QSAR模型:i)物理化学和结构(PC&S)描述符,以生成由测试化合物的优化分子结构得出的多参数偏最小二乘(PLS)回归方程,以及ii)通过额叶多边形(FP)方法从分子片段中获得的46种具有局部指纹的化合物。我们使用FP方法在所有3个测定系统中获得了更高的QSAR相关系数(r)(对于生化,酶和全细胞测定系统中的数据集分别为0.966、0.948和0.965) )。此外,这些数据集的高留一法制交叉验证系数(q 2 )分别为0.907、0.821和0.897,表明该模型具有增强的预测能力和鲁棒性。使用FP方法,还鉴定了在三个测定系统中负责端点抗氧化剂活性的结构片段(亚分子)。据我们所知,这是第一个用于描述类黄酮在细胞系统中的直接/间接抗氧化剂作用的QSAR模型,该模型可为进一步开发具有治疗潜力的类黄酮类抗氧化剂化合物奠定基础。

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