2D finger-printing and molecular docking studies identified potent mosquito repellents targeting odorant binding protein 1

IF 3.2 2区 农林科学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Insect Biochemistry and Molecular Biology Pub Date : 2023-06-01 DOI:10.1016/j.ibmb.2023.103961
Panagiota G.V. Liggri , Alfonso Pérez-Garrido , Katerina E. Tsitsanou , Kalarickal V. Dileep , Antonios Michaelakis , Dimitrios P. Papachristos , Horacio Pérez-Sánchez , Spyros E. Zographos
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Abstract

Personal protection measures against the mosquitoes like the use of repellents constitute valuable tools in the effort to prevent the transmission of vector-borne diseases. Therefore, the discovery of novel repellent molecules which will be effective at lower concentrations and provide a longer duration of protection remains an urgent need.

Mosquito Odorant-Binding Proteins (OBPs) involved in the initial steps of the olfactory signal transduction cascade have been recognized not only as passive carriers of odors and pheromones but also as the first molecular filter to discriminate semiochemicals, hence serving as molecular targets for the design of novel pest control agents. Among the three-dimensional structures of mosquito OBPs solved in the last decades, the OBP1 complexes with known repellents have been widely used as reference structures in docking analysis and molecular dynamics simulation studies for the structure-based discovery of new molecules with repellent activity.

Herein, ten compounds known to be active against mosquitoes and/or displaying a binding affinity for Anopheles gambiae AgamOBP1 were used as queries in an in silico screening of over 96 million chemical samples in order to detect molecules with structural similarity. Further filtering of the acquired hits on the basis of toxicity, vapor pressure, and commercial availability resulted in 120 unique molecules that were subjected to molecular docking studies against OBP1. For seventeen potential OBP1-binders, the free energy of binding (FEB) and mode of interaction with the protein were further estimated by molecular docking simulations leading to the selection of eight molecules exhibiting the highest similarity with their parental compounds and favorable energy values. The in vitro determination of their binding affinity to AgamOBP1 and the evaluation of their repellent activity against female Aedes albopictus mosquitoes revealed that our combined ligand similarity screening and OBP1 structure-based molecular docking successfully detected three molecules with enhanced repellent properties. A novel DEET-like repellent with lower volatility (8.55 × 10−4 mmHg) but a higher binding affinity for OBP1 than DEET (1.35 × 10−3 mmHg). A highly active repellent molecule that is predicted to bind to the secondary Icaridin (sIC)-binding site of OBP1 with higher affinity than to the DEET-site and, therefore, represents a new scaffold to be exploited for the discovery of binders targeting multiple OBP sites. Finally, a third potent repellent exhibiting a high degree of volatility was found to be a strong DEET-site binder of OBP1 that could be used in slow-release formulations.

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二维指纹和分子对接研究发现了针对气味结合蛋白1的强效驱蚊剂
驱蚊剂等个人防护措施是预防病媒传播疾病的宝贵手段。因此,迫切需要发现在较低浓度下有效并提供较长保护时间的新型驱蚊分子。蚊子气味结合蛋白(OBPs)参与嗅觉信号转导级联的初始步骤,不仅被认为是气味和信息素的被动载体,而且是识别符号化学物质的第一个分子过滤器,因此可以作为设计新型害虫防治剂的分子靶点。在近几十年来已探明的蚊子OBP1的三维结构中,OBP1配合物与已知的驱避剂已被广泛用作对接分析和分子动力学模拟研究的参考结构,从而基于结构发现具有驱避活性的新分子。本文利用已知对蚊子有活性和/或对冈比亚按蚊AgamOBP1具有结合亲和力的10种化合物作为查询,对超过9600万份化学样品进行了计算机筛选,以检测具有结构相似性的分子。根据毒性、蒸汽压和商业可用性对获得的靶点进行进一步过滤,得到120个独特的分子,用于与OBP1进行分子对接研究。对于17种潜在的obp1结合物,通过分子对接模拟进一步估计了自由结合能(FEB)和与蛋白质的相互作用模式,从而选择出8种与其亲本化合物相似度最高且能值有利的分子。体外测定其与AgamOBP1的结合亲和力及对雌性白纹伊蚊的驱避活性评价表明,我们结合配体相似性筛选和基于OBP1结构的分子对接成功检测到3种驱避性能增强的分子。与DEET (1.35 × 10−3 mmHg)相比,新型DEET类驱蚊剂具有较低的挥发性(8.55 × 10−4 mmHg),但对OBP1的结合亲和力更高。一种高活性的驱蚊分子,预计与OBP1的二级Icaridin (sIC)结合位点结合的亲和力高于与避蚊胺位点的亲和力,因此代表了一种新的支架,可以用于发现针对多个OBP位点的结合剂。最后,第三种具有高度挥发性的强效驱蚊剂被发现是OBP1的强避蚊胺位点粘合剂,可用于缓释制剂。
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来源期刊
CiteScore
7.40
自引率
5.30%
发文量
105
审稿时长
40 days
期刊介绍: This international journal publishes original contributions and mini-reviews in the fields of insect biochemistry and insect molecular biology. Main areas of interest are neurochemistry, hormone and pheromone biochemistry, enzymes and metabolism, hormone action and gene regulation, gene characterization and structure, pharmacology, immunology and cell and tissue culture. Papers on the biochemistry and molecular biology of other groups of arthropods are published if of general interest to the readership. Technique papers will be considered for publication if they significantly advance the field of insect biochemistry and molecular biology in the opinion of the Editors and Editorial Board.
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