Institute of Pesticide and Environmental Toxicology, Key Laboratory of Biology of Crop Pathogens and Insects of Zhejiang Province, Ministry of Agriculture Key Laboratory of Molecular Biology of Crop Pathogens and Insects, Zhejiang University, Yuhangtang Road 866, Hangzhou 310058, China.
Quality and Safety Engineering Institute of Food and Drug, Zhejiang Gongshang University, Hangzhou 310018, China.
Anal Chem. 2023 Aug 1;95(30):11287-11295. doi: 10.1021/acs.analchem.3c01355. Epub 2023 Jul 17.
A novel virtual screening strategy was proposed for the profiling and discovery of active variable regions (VRs) that encode hapten-specific recombinant antibodies (rAbs). Chlorpyrifos, a hazardous organophosphorus pesticide, was selected as the target. First, a VR model-14G4 from anti-chlorpyrifos hybridoma was built via homology modeling. Its binding pattern toward seven organophosphorus analogues was assessed through virtual screening by performing molecular docking. Based on energy scoring, visual examination, and molecular interaction analysis, chlorpyrifos-methyl was also inferred as the high-affinity target for model-14G4 and was then confirmed via a non-competitive surface plasmon resonance (SPR) assay. Subsequently, we attempted to discover hapten-specific VRs by creating a collection of VR models for anonymous testing. Chlorpyrifos and model-14G4 were employed as the known hit and active VRs, respectively. After molecular docking, a novel anti-chlorpyrifos VR (model-1) was identified due to its satisfactory energy scoring and a similar binding pattern to the reference model-14G4. Expressed by HEK293(F) mammalian cells, the newly prepared full-length rAb-model-1 and rAb-14G4 exhibited high sensitivities for detecting chlorpyrifos by the indirect competitive enzyme-linked immunosorbent assay (ic-ELISA), with IC of 3.01 ng/mL and 42.82 ng/mL, respectively. They recognized chlorpyrifos-methyl with a cross-reactivity (CR) of 2.5-17.3%. Moreover, the binding properties of rAb-model-1 for recognizing chlorpyrifos and chlorpyrifos-methyl were confirmed via a non-competitive microscale thermophoresis (MST) method. Thus, the experimental results showed good agreement with computational outputs on antibody profiling. Furthermore, the recognition diversity of rAb-model-1 for chlorpyrifos and chlorpyrifos-methyl was studied via molecular dynamics simulation. Overall, the proposed study provides a versatile and economical strategy for antibody characterization and promotes the production of rAbs for pesticide monitoring.
提出了一种新的虚拟筛选策略,用于分析和发现编码半抗原特异性重组抗体(rAb)的活性可变区(VR)。选择了危险的有机磷农药毒死蜱作为靶标。首先,通过同源建模构建了抗毒死蜱杂交瘤的 VR 模型-14G4。通过分子对接进行虚拟筛选,评估了其与七种有机磷类似物的结合模式。基于能量评分、目视检查和分子相互作用分析,还推断出氯甲基毒死蜱是模型-14G4的高亲和力靶标,并通过非竞争性表面等离子体共振(SPR)测定法进行了确认。随后,我们尝试通过创建一个匿名测试的 VR 模型集合来发现半抗原特异性 VR。使用毒死蜱和模型-14G4 分别作为已知命中和活性 VR。经过分子对接,由于其令人满意的能量评分和与参考模型-14G4 相似的结合模式,鉴定出一种新型抗毒死蜱 VR(模型-1)。通过 HEK293(F)哺乳动物细胞表达,新制备的全长 rAb-模型-1 和 rAb-14G4 通过间接竞争酶联免疫吸附测定(ic-ELISA)检测,对毒死蜱的灵敏度分别为 3.01 ng/mL 和 42.82 ng/mL。它们对氯甲基毒死蜱的交叉反应(CR)为 2.5-17.3%。此外,通过非竞争性微尺度热泳动(MST)方法证实了 rAb-模型-1 对识别毒死蜱和氯甲基毒死蜱的结合特性。因此,实验结果与抗体分析的计算结果吻合较好。此外,还通过分子动力学模拟研究了 rAb-模型-1 对毒死蜱和氯甲基毒死蜱的识别多样性。总之,该研究提出了一种通用且经济的抗体表征策略,并促进了用于农药监测的 rAb 的生产。