Shotgun Proteomic-Based Approach with a Q-Exactive Hybrid Quadrupole-Orbitrap High-Resolution Mass Spectrometer for Protein Adductomics on a 3D Human Brain Tumor Neurospheroid Culture Model: The Identification of Adduct Formation in Calmodulin-Dependent Protein Kinase-2 and Annexin-A1 Induced by Pesticide Mixture

采用 Q-Exactive 混合四极杆轨道阱高分辨率质谱仪进行基于散弹枪蛋白质组学的方法,在 3D 人脑肿瘤神经球培养模型上进行蛋白质加合物组学研究:鉴定农药混合物诱导的钙调蛋白依赖性蛋白激酶-2 和膜联蛋白-A1 中的加合物形成

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作者:Kaouthar Louati, Amina Maalej, Fatma Kolsi, Rim Kallel, Yassine Gdoura, Mahdi Borni, Leila Sellami Hakim, Rania Zribi, Sirine Choura, Sami Sayadi, Mohamed Chamkha, Basma Mnif, Zouheir Khemakhem, Tahya Sellami Boudawara, Mohamed Zaher Boudawara, Fathi Safta

Abstract

Pesticides are increasingly used in combinations in crop protection, resulting in enhanced toxicities for various organisms. Although protein adductomics is challenging, it remains a powerful bioanalytical tool to check environmental exposure and characterize xenobiotic adducts as putative toxicity biomarkers with high accuracy, facilitated by recent advances in proteomic methodologies and a mass spectrometry high-throughput technique. The present study aims to predict the potential neurotoxicity effect of imidacloprid and λ-cyhalothrin insecticides on human neural cells. Our protocol consisted first of 3D in vitro developing neurospheroids derived from human brain tumors and then treatment by pesticide mixture. Furthermore, we adopted a bottom-up proteomic-based approach using nanoflow ultraperformance liquid chromatography coupled with a high-resolution mass spectrometer for protein-adduct analysis with prediction of altered sites. Two proteins were selected, namely, calcium-calmodulin-dependent protein kinase-II (CaMK2) and annexin-A1 (ANXA1), as key targets endowed with primordial roles. De novo sequencing revealed several adduct formations in the active site of 82-ANXA1 and 228-CaMK2 as a result of neurotoxicity, predicted by the added mass shifts for the structure of electrophilic precursors. To the best of our knowledge, our study is the first to adopt a proteomic-based approach to investigate in depth pesticide molecular interactions and their potential to adduct proteins which play a crucial role in the neurotoxicity mechanism.

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