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首页> 外文期刊>Journal of Agricultural and Food Chemistry >Key Amino Residues Determining Binding Activities of the Odorant Binding Protein AlucOBP22 to Two Host Plant Terpenoids of Apolygus lucorum
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Key Amino Residues Determining Binding Activities of the Odorant Binding Protein AlucOBP22 to Two Host Plant Terpenoids of Apolygus lucorum

机译:键氨基残基测定气味结合蛋白Alucobp22至两种宿主植物三萜类植物的结合活性

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摘要

Odorant binding proteins (OBPs) are considered to be highly expressed at antennae sensillum lymph and play crucial roles in detection of insect host plant volatiles. The polyphagous mind bug Apolygus lucorum is one of a series of insect pests on many important agricultural crops that heavily rely on sophisticated olfaction to locate host plants. Previously, putative OBP genes and their tissue-related expression patterns in this pest species have been clarified. In this study, we characterized the ligand spectrum and the molecular binding mechanism of the antennae-biased AlucOBP22 to host plant volatiles of A. lucorum. Frist, the recombinant AlucOBP22 protein was constructed and purified, and its binding affinities to selected host plant volatiles were assessed. Two terpenoids, beta-ionone and beta-caryophyllene, could highly bind to AlucOBP22. Next, three-dimensional model prediction indicated that AlucOBP22 employed six alpha-helices to form a typical pocket for ligand accommodation. Molecular docking analysis suggested that both beta-ionone and beta-caryophyllene were located at the AlucOBP22 pocket with some hydrophobic amino acid residues close to the two chemicals, suggesting that hydrophobic interactions might be crucial for ligand-specific binding. Finally, site-directed mutagenesis combined with fluorescence binding assays revealed that mutants of five hydrophobic residues Leu5, Ile40, Met41, Va144, and Met45 displayed significantly decreased or completely abolished binding affinities to the two ligands. Our findings showed the specific binding characteristic of AlucOBP22 and suggested that hydrophobic residues and their hydrophobic interactions were involved in AIucOBP22 binding to terpenoids, which provided new insights into the molecular interaction mechanisms of hemipteran insect OBPs to host plant odors.
机译:气味结合蛋白(OBP)被认为是在天线感变淋巴中高度表达,并在检测昆虫宿主植物挥发物中发挥至关重要的作用。多功能脑膜虫子植物是一种在许多重要农作物中的一系列虫害的一系列,这些农作物严重依赖于复杂的嗅觉来定位宿主植物。以前,已经阐明了这种害虫物种中的推定OBP基因及其组织相关表达模式。在该研究中,我们将邻环偏置的Alucobp22的配体光谱和分子结合机制表征为A. lucorum的植物挥发物。德里斯特,构建并纯化重组alucobp22蛋白,评估其对选定的宿主植物挥发物的结合亲和力。两种三萜类化合物,β-离子和β-羧基,可以高度结合alucobp22。接下来,三维模型预测表明,Alucobp22采用六个α-螺旋来形成用于配体的典型的袋。分子对接分析表明,β-离子和β-亚替糖烯醇均位于阿康普22袋中,其具有靠近两种化学物质的一些疏水性氨基酸残基,表明疏水相互作用可能对配体特异性结合至关重要。最后,与荧光结合测定结合的现场定向诱变显示,突变体为五种疏水性残基Leu5,ILE40,MET41,VA144和MET45显着降低或完全废除了两个配体的结合亲和力。我们的研究结果显示了Alucobp22的特异性结合特征,并表明疏水残留物及其疏水性相互作用参与AIUCOBP22与萜类化合物的结合,这提供了新的见解血液昆虫对植物气味的分子相互作用机制。

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  • 作者单位

    Chinese Acad Agr Sci Inst Plant Protect State Key Lab Biol Plant Dis &

    Insect Pests Beijing 100193 Peoples R China;

    China Agr Univ Coll Sci Beijing 100193 Peoples R China;

    Chinese Acad Agr Sci Inst Plant Protect State Key Lab Biol Plant Dis &

    Insect Pests Beijing 100193 Peoples R China;

    Chinese Acad Agr Sci Inst Plant Protect State Key Lab Biol Plant Dis &

    Insect Pests Beijing 100193 Peoples R China;

    Chinese Acad Agr Sci Inst Plant Protect State Key Lab Biol Plant Dis &

    Insect Pests Beijing 100193 Peoples R China;

    Chinese Acad Agr Sci Key Lab Biol Genet &

    Breeding Special Econ Anim &

    Key Lab Tea Qual &

    Safety Control Minist Agr Tea Res Inst Hangzhou 310008 Zhejiang Peoples R China;

    Chinese Acad Agr Sci Inst Plant Protect State Key Lab Biol Plant Dis &

    Insect Pests Beijing 100193 Peoples R China;

    Chinese Acad Agr Sci Inst Plant Protect State Key Lab Biol Plant Dis &

    Insect Pests Beijing 100193 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 营养卫生、食品卫生;农业科学;
  • 关键词

    Apolygus lucorum; AlucOBP22; plant terpenoids; binding feature; molecular docking; site-directed mutagenesis;

    机译:apolygus lucorum;alucobp22;植物萜件;结合特征;分子对接;现场导向诱变;

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