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结构转变检测有助于行为活性化合物的筛选:嗜菌异小杆线虫DhelOBP21的动态结合过程分析

Structural Transformation Detection Contributes to Screening of Behaviorally Active Compounds: Dynamic Binding Process Analysis of DhelOBP21 from Dastarcus helophoroides.

作者信息

Yang Rui-Nan, Li Dong-Zhen, Yu Guangqiang, Yi Shan-Cheng, Zhang Yinan, Kong De-Xin, Wang Man-Qun

机构信息

Hubei Insect Resources Utilization and Sustainable Pest Management Key Laboratory, College of Plant Science and Technology, Huazhong Agricultural University, Wuhan, 430070, People's Republic of China.

College of Informatics, Huazhong Agricultural University, Wuhan, 430070, People's Republic of China.

出版信息

J Chem Ecol. 2017 Dec;43(11-12):1033-1045. doi: 10.1007/s10886-017-0897-x. Epub 2017 Oct 23.

Abstract

In light of reverse chemical ecology, the fluorescence competitive binding assays of functional odorant binding proteins (OBPs) is a recent advanced approach for screening behaviorally active compounds of insects. Previous research on Dastareus helophoroides identified a minus-C OBP, DhelOBP21, which preferably binds to several ligands. In this study, only (+)-β-pinene proved attractive to unmated adult beetles. To obtain a more in-depth explanation of the lack of behavioral activity of other ligands we selected compounds with high (camphor) and low (β-caryophyllene) binding affinities. The structural transformation of OBPs was investigated using well-established approaches for studying binding processes, such as fluorescent quenching assays, circular dichroism, and molecular dynamics. The dynamic binding process revealed that the flexibility of DhelOBP21 seems conducive to binding specific ligands, as opposed to broad substrate binding. The compound (+)-β-pinene and DhelOBP21 formed a stable complex through a secondary structural transformation of DhelOBP21, in which its amino-terminus transformed from random coil to an α-helix to cover the binding pocket. On the other hand, camphor could not efficiently induce a stable structural transformation, and its high binding affinities were due to strong hydrogen-bonding, compromising the structure of the protein. The other compound, β-caryophyllene, only collided with DhelOBP21 and could not be positioned in the binding pocket. Studying structural transformation of these proteins through examining the dynamic binding process rather than using approaches that just measure binding affinities such as fluorescence competitive binding assays can provide a more efficient and reliable approach for screening behaviorally active compounds.

摘要

基于逆向化学生态学,功能性气味结合蛋白(OBPs)的荧光竞争性结合测定是一种用于筛选昆虫行为活性化合物的最新先进方法。先前对荷叶达斯特萤叶甲的研究鉴定出一种负C型OBP,即DhelOBP21,它优先结合几种配体。在本研究中,仅(+)-β-蒎烯对未交配的成年甲虫具有吸引力。为了更深入地解释其他配体缺乏行为活性的原因,我们选择了具有高(樟脑)和低(β-石竹烯)结合亲和力的化合物。利用成熟的研究结合过程的方法,如荧光猝灭测定、圆二色性和分子动力学,研究了OBPs的结构转变。动态结合过程表明,与广泛的底物结合不同,DhelOBP21的灵活性似乎有利于结合特定配体。(+)-β-蒎烯与DhelOBP21通过DhelOBP21的二级结构转变形成稳定复合物,其中其氨基末端从无规卷曲转变为α-螺旋以覆盖结合口袋。另一方面,樟脑不能有效地诱导稳定的结构转变,其高结合亲和力归因于强氢键作用,这损害了蛋白质的结构。另一种化合物β-石竹烯仅与DhelOBP21碰撞,无法定位在结合口袋中。通过研究这些蛋白质的动态结合过程而非仅使用诸如荧光竞争性结合测定等测量结合亲和力的方法来研究其结构转变,可以为筛选行为活性化合物提供一种更有效、可靠的方法。

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