Zheng Jiangge, Li Junru, Han Lei, Wang Yang, Wu Wei, Qi Xiaoxuan, Tao Ye, Zhang Long, Zhang Ziding, Chen Zhongzhou
State Key Laboratory of Agrobiotechnology, China Agricultural University, Beijing 100193, China.
State Key Laboratory of Agrobiotechnology, China Agricultural University, Beijing 100193, China; Tianjin Medical University Cancer Institute and Hospital, National Clinical Research Center of Cancer, Tianjin 300060, China.
Biochem Biophys Res Commun. 2015 Jan 16;456(3):737-42. doi: 10.1016/j.bbrc.2014.12.048. Epub 2014 Dec 15.
Locusta migratoria (Lmig) causes enormous losses to agricultural products, especially because it often infests the world with great swarms as locust plagues. Locusts find their plant hosts on which they feed through their olfactory system, in which odorant binding proteins (OBPs) play an important role. Previous study indicated that the amino acid sequences of LmigOBP showed low similarity to OBPs from other insect orders and we speculated that it might perform unique binding behavior. Here, we solved the first LmigOBP1 structure at 1.65Å, which is a monomer in solution and disulfide bonds play a key role in maintaining its function. We show that LmigOBP1 possesses a unique seventh α-helix, which is located at the surface with strong interactions with the LmigOBP1 scaffold consisting of other six α-helices. Moreover, the seventh α-helix forms a wall of an "L" shaped internal hydrophobic cavity to accommodate linear ligands, which is consistent with the binding experiments. We also demonstrate that the ligand-binding pocket in LmigOBP1 is greatly different from that in the closest homologs mosquito OBPs. Taken together, this study provides a structural basis for designing small inhibitors to control locust.
飞蝗(Locusta migratoria, Lmig)给农产品造成了巨大损失,尤其是因为它经常以蝗灾的形式成群侵扰全球。蝗虫通过其嗅觉系统找到它们取食的植物宿主,其中气味结合蛋白(odorant binding proteins, OBPs)发挥着重要作用。先前的研究表明,飞蝗OBP(LmigOBP)的氨基酸序列与其他昆虫目的OBPs相似度较低,我们推测它可能具有独特的结合行为。在此,我们解析了首个LmigOBP1的结构,分辨率为1.65Å,它在溶液中为单体,二硫键在维持其功能中起关键作用。我们发现LmigOBP1拥有一个独特的第七个α螺旋,它位于表面,与由其他六个α螺旋组成的LmigOBP1支架有强烈相互作用。此外,第七个α螺旋形成了一个“L”形内部疏水腔的壁,以容纳线性配体,这与结合实验结果一致。我们还证明,LmigOBP1中的配体结合口袋与最接近的同源物蚊子OBPs中的配体结合口袋有很大不同。综上所述,本研究为设计控制蝗虫的小分子抑制剂提供了结构基础。