Bayer AG, Crop Science Division, R&D, Alfred Nobel-Strasse 50, 40789 Monheim, Germany.
Syngenta Crop Protection, Werk Stein, Schaffhauserstrasse, Stein CH4332, Switzerland.
Curr Opin Insect Sci. 2021 Feb;43:78-84. doi: 10.1016/j.cois.2020.10.011. Epub 2020 Nov 10.
Insect cytochrome P450-monooxygenases (P450s) are an enzyme superfamily involved in the oxidative transformation of endogenous and exogenous substrates, including insecticides. They were also shown to determine insecticide selectivity in beneficial arthropods such as bee pollinators, and to detoxify plant secondary metabolites. The recent explosion in numbers of P450s due to increased invertebrate genomes sequenced, allowed researchers to study their functional relevance for xenobiotic metabolism by recombinant expression using different expression systems. Troubleshooting strategies, including different systems and protein modifications typically adapted from mammalian P450s, have been applied to improve the functional expression, with partial success. The aim of this mini review is to critically summarize different strategies recently developed and used to produce recombinant insect P450s for xenobiotic metabolism studies.
昆虫细胞色素 P450-单加氧酶(P450s)是一个参与内源性和外源性底物氧化转化的酶超家族,包括杀虫剂。它们还被证明决定了有益节肢动物(如蜜蜂传粉者)对杀虫剂的选择性,并能解毒植物次生代谢物。由于测序的无脊椎动物基因组数量的增加,最近 P450s 的数量大量增加,这使得研究人员能够通过使用不同的表达系统进行重组表达来研究它们对外源物质代谢的功能相关性。研究人员应用了一些故障排除策略,包括通常从哺乳动物 P450s 中改编的不同系统和蛋白质修饰,以提高功能表达,但取得了部分成功。本综述的目的是批判性地总结最近开发并用于进行外源物质代谢研究的重组昆虫 P450 生产的不同策略。