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定位突变气味结合蛋白。

Site-directed mutagenesis of odorant-binding proteins.

机构信息

AIT Austrian Institute of Technology GmbH, Biosensor Technologies, Tulln, Austria; Faculty of Biology, Institute of Molecular Physiology, Johannes Gutenberg-Universität, Mainz, Germany.

AIT Austrian Institute of Technology GmbH, Biosensor Technologies, Tulln, Austria; Department of Nanobiotechnology, University of Natural Resources and Life Sciences, Vienna, Austria.

出版信息

Methods Enzymol. 2020;642:301-324. doi: 10.1016/bs.mie.2020.05.014. Epub 2020 Jun 19.

DOI:10.1016/bs.mie.2020.05.014
PMID:32828258
Abstract

Modifying the affinity of odorant-binding proteins (OBPs) to small ligands by replacement of specific residues in the binding pocket may lead to several technological applications. Thanks to their compact and stable structures, OBPs are currently regarded as the best candidates to be used in biosensing elements for odorants and volatiles detection. The wide and rich information on the structure of these proteins both in their apo-forms and in complexes with specific ligands provides guidelines to design reliable mutants to monitor specific targets. The same engineered proteins may also find applications in the slow release of pheromones and other chemicals in the environment, as well as in the fine purification of drugs, including the resolution of racemates. Apart from such useful applications, site-directed mutagenesis represents an interesting approach to dissect the specific interactions between small chemicals and amino acid residues in the binding pocket. These studies can lead to design of better ligands, such as pheromone analogues with desired physico-chemical characteristics. In this chapter we examine the different uses of mutagenesis applied to OBPs and report a couple of protocols that have been successful in our hands.

摘要

通过替换结合口袋中特定残基,可以改变气味结合蛋白(OBP)与小分子配体的亲和力,这可能会带来一些技术应用。由于其结构紧凑且稳定,OBP 目前被认为是用于气味和挥发性物质检测的生物传感元件的最佳候选物。这些蛋白质的结构信息非常广泛和丰富,无论是在它们的无配体形式还是与特定配体的复合物中,都为设计可靠的突变体以监测特定靶标提供了指导。同样的工程蛋白也可能在环境中缓慢释放信息素和其他化学物质,以及精细纯化药物(包括拆分外消旋体)方面找到应用。除了这些有用的应用之外,定点突变代表了一种有趣的方法,可以剖析小分子与结合口袋中氨基酸残基之间的特定相互作用。这些研究可以设计出更好的配体,例如具有所需物理化学特性的信息素类似物。在这一章中,我们检查了应用于 OBP 的诱变的不同用途,并报告了一些在我们手中成功的方案。

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