通过同源性建模、分子对接和MD模拟揭示臭臭剂和PBP1之间的分子识别机制。

IF 2.3 3区 环境科学与生态学 Q3 CHEMISTRY, MULTIDISCIPLINARY
L Chen, H Zhang, B Zhao, X Li, R Wang
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引用次数: 0

摘要

信息素结合蛋白(pbp)通过结合和运输气味来帮助昆虫有效地交流和调节社会行为。然而,Loxostege sticticalis中PBP1 (LstiPBP1)与气味剂的精确原子水平相互作用仍然知之甚少。因此,我们通过同源性建模构建了LstiPBP1的三维结构,然后通过分子对接分别得到了LstiPBP1与6种气味剂(顺式-3-己烯乙酸酯、萘、七醛、苯乙醇、α-离子酮和(E)-11-十四烯醇)的复合结构。每个复合物都进行了分子动力学模拟,以研究它们之间的详细相互作用。对关键残基进行了硅基定向诱变,以验证模拟模型的准确性。能量分析和相互作用模式显示,主要源于范德华相互作用的疏水相互作用是LstiPBP1与这些气味剂相互作用的关键。此外,我们还发现了LstiPBP1上与不同气味剂相互作用的热点残基,进一步了解了控制它们识别的特定分子相互作用。这些结果有助于开发针对昆虫嗅觉系统的抑制剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unravelling the molecular recognition mechanism between odorants and PBP1 in Loxostege sticticalis by homology modelling, molecular docking, and MD simulation.

Pheromone-binding proteins (PBPs) help insects communicate effectively and regulate social behaviour by binding and transporting odorants. However, the precise atomic-level interactions of PBP1 in Loxostege sticticalis (LstiPBP1) with odorants remain poorly understood. Therefore, the three-dimensional structure of LstiPBP1 was constructed using homology modelling, after which complex structures of LstiPBP1 with six odorants (cis-3-hexenyl acetate, naphthalene, heptaldehyde, phenethyl alcohol, α-ionone, and (E)-11-tetradecenol), respectively, were obtained by molecular docking. Each complex underwent molecular dynamics simulations to investigate their detailed interactions. In silico site-directed mutagenesis was performed on the key residues to verify the accuracy of the simulation models. Energy analysis and interaction patterns revealed that hydrophobic interactions, mainly stemming from van der Waals interactions, are critical for the interaction between LstiPBP1 and these odorants. Additionally, hotspot residues on LstiPBP1 involved in interacting with different odorants were identified, providing further insight into the specific molecular interactions that govern their recognition. These results facilitate the development of inhibitors targeting the insect olfactory system.

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来源期刊
CiteScore
5.20
自引率
20.00%
发文量
78
审稿时长
>24 weeks
期刊介绍: SAR and QSAR in Environmental Research is an international journal welcoming papers on the fundamental and practical aspects of the structure-activity and structure-property relationships in the fields of environmental science, agrochemistry, toxicology, pharmacology and applied chemistry. A unique aspect of the journal is the focus on emerging techniques for the building of SAR and QSAR models in these widely varying fields. The scope of the journal includes, but is not limited to, the topics of topological and physicochemical descriptors, mathematical, statistical and graphical methods for data analysis, computer methods and programs, original applications and comparative studies. In addition to primary scientific papers, the journal contains reviews of books and software and news of conferences. Special issues on topics of current and widespread interest to the SAR and QSAR community will be published from time to time.
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