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Structure of an Odorant-Binding protein from the Mosquito Aedes aegypti suggests a binding pocket covered by a pH-sensitive “Lid”

机译:埃及伊蚊的气味结合蛋白的结构表明,结合袋被pH敏感的“盖”所覆盖

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摘要

Background\ud\udThe yellow fever mosquito, Aedes aegypti, is the primary vector for the viruses that cause yellow fever, mostly in tropical regions of Africa and in parts of South America, and human dengue, which infects 100 million people yearly in the tropics and subtropics. A better understanding of the structural biology of olfactory proteins may pave the way for the development of environmentally-friendly mosquito attractants and repellents, which may ultimately contribute to reduction of mosquito biting and disease transmission.\ud\udMethodology\ud\udPreviously, we isolated and cloned a major, female-enriched odorant-binding protein (OBP) from the yellow fever mosquito, AaegOBP1, which was later inadvertently renamed AaegOBP39. We prepared recombinant samples of AaegOBP1 by using an expression system that allows proper formation of disulfide bridges and generates functional OBPs, which are indistinguishable from native OBPs. We crystallized AaegOBP1 and determined its three-dimensional structure at 1.85 Å resolution by molecular replacement based on the structure of the malaria mosquito OBP, AgamOBP1, the only mosquito OBP structure known to date.\ud\udConclusion\ud\udThe structure of AaegOBP1 ( = AaegOBP39) shares the common fold of insect OBPs with six α-helices knitted by three disulfide bonds. A long molecule of polyethylene glycol (PEG) was built into the electron-density maps identified in a long tunnel formed by a crystallographic dimer of AaegOBP1. Circular dichroism analysis indicated that delipidated AaegOBP1 undergoes a pH-dependent conformational change, which may lead to release of odorant at low pH (as in the environment in the vicinity of odorant receptors). A C-terminal loop covers the binding cavity and this “lid” may be opened by disruption of an array of acid-labile hydrogen bonds thus explaining reduced or no binding affinity at low pH.
机译:背景\ ud \ ud黄热蚊(Aedes aegypti)是引起黄热病毒的主要媒介,主要在非洲的热带地区和南美的部分地区以及人类的登革热,这些病毒在热带地区每年感染1亿人和亚热带。对嗅觉蛋白的结构生物学的更好理解可能为环境友好型蚊子引诱剂和驱虫剂的发展铺平道路,这最终可能有助于减少蚊子的叮咬和疾病传播。\ ud \ udMethodology \ ud \ ud并从黄热病蚊子AaegOBP1中克隆了一种富含雌性的主要气味结合蛋白(OBP),后来又无意中将其重命名为AaegOBP39。我们使用表达系统制备了AaegOBP1的重组样品,该系统可正确形成二硫键并生成功能性OBP,与天然OBP难以区分。我们将AaegOBP1结晶并通过基于疟疾蚊子OBP,AgamOBP1的结构的分子置换,以1.85Å的分辨率确定其三维结构,这是迄今为止已知的唯一的蚊子OBP结构。\ ud \ ud结论\ ud \ ud = AaegOBP39)与昆虫OBP的共有折叠相同,它们具有通过三个二硫键编织而成的六个α螺旋。在由AaegOBP1的晶体学二聚体形成的长隧道中识别出的电子密度图中,建立了一个长分子的聚乙二醇(PEG)。圆二色性分析表明,脱脂的AaegOBP1经历了pH依赖的构象变化,这可能导致低pH值(如在气味受体附近的环境中)释放气味。一个C末端的环覆盖了结合腔,这个“盖子”可以通过破坏一系列酸不稳定的氢键来打开,从而解释了在低pH下结合亲和力降低或没有结合亲和力的情况。

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