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Substructure-activity relationship studies on antibody recognition for phenylurea compounds using competitive immunoassay and computational chemistry

机译:使用竞争性免疫测定和计算化学的苯脲化合物抗体识别的亚结构 - 活性关系研究

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Based on the structural features of fluometuron, an immunizing hapten was synthesized and conjugated to bovine serum albumin as an immunogen to prepare a polyclonal antibody. However, the resultant antibody indicated cross-reactivity with 6 structurally similar phenylurea herbicides, with binding activities (expressed by IC50 values) ranging from 1.67?μg/L to 42.71?μg/L. All 6 phenylurea herbicides contain a common moiety and three different substitutes. To understand how these three different chemical groups affect the antibody-phenylurea recognition activity, quantum chemistry, using density function theory (DFT) at the B3LYP/6-311++ G(d,p) level of theory, was employed to optimize all phenylurea structures, followed by determination of the 3D conformations of these molecules, pharmacophore analysis, and molecular electrostatic potential (ESP) analysis. The molecular modeling results confirmed that the geometry configuration, pharmacophore features and electron distribution in the substituents were related to the antibody binding activity. Spearman correlation analysis further elucidated that the geometrical and electrostatic properties on the van der Waals (vdW) surface of the substituents played a critical role in the antibody-phenylurea recognition process.
机译:基于荧光素的结构特征,合成免疫半抗原并与牛血清白蛋白作为免疫原制备多克隆抗体。然而,所得抗体与6个结构相似的苯脲除草剂表示交叉反应性,其结合活性(由IC 50值表达)范围为1.67Ω·μg/ L至42.71Ω·μg/ L.所有6个苯脲除草剂含有常见的部分和三种不同的替代物。要了解这三种不同的化学基团如何影响抗体 - 苯脲识别活性,使用密度函数理论(DFT)在B3LYP / 6-311 ++ G(D,P)理论水平上的量子化学,用于优化所有苯脲结构,然后测定这些分子的3D构象,药物分析和分子静电潜力(ESP)分析。分子建模结果证实,取代基的几何构型,药物团特征和电子分布与抗体结合活性有关。 Spearman相关性分析进一步阐明了取代基范德瓦尔斯(VDW)表面上的几何和静电性质在抗体 - 苯基脲识别过程中发挥着关键作用。

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