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菊酯抗性和氟虫腈耐受型褐狗蜱代谢抗性机制的测定

Determination of metabolic resistance mechanisms in pyrethroid-resistant and fipronil-tolerant brown dog ticks.

作者信息

Eiden A L, Kaufman P E, Oi F M, Dark M J, Bloomquist J R, Miller R J

机构信息

Department of Entomology and Nematology, University of Florida, Gainesville, FL, U.S.A.

Department of Infectious Diseases and Pathology, College of Veterinary Medicine, University of Florida, Gainesville, FL, U.S.A.

出版信息

Med Vet Entomol. 2017 Sep;31(3):243-251. doi: 10.1111/mve.12240. Epub 2017 Jun 22.

Abstract

Rhipicephalus sanguineus (Latreille) (Ixodida: Ixodidae) is a three-host dog tick found worldwide that is able to complete its' entire lifecycle indoors. Options for the management of R. sanguineus are limited and its' control relies largely on only a few acaricidal active ingredients. Previous studies have confirmed permethrin resistance and fipronil tolerance in R. sanguineus populations, commonly conferred by metabolic detoxification or target site mutations. Herein, five strains of permethrin-resistant and three strains of fipronil-tolerant ticks were evaluated for metabolic resistance using synergists to block metabolic enzymes. Synergist studies were completed with triphenyl phosphate (TPP) for esterase inhibition, piperonyl butoxide (PBO) for cytochrome P450 inhibition, and diethyl maleate (DEM) for glutathione-S-transferase inhibition. Additionally, increased esterase activity was confirmed using gel electrophoresis. The most important metabolic detoxification mechanism in permethrin-resistant ticks was increased esterase activity, followed by increased cytochrome P450 activity. The inhibition of metabolic enzymes did not have a marked impact on fipronil-tolerant tick strains.

摘要

血红扇头蜱(Latreille)(硬蜱目:硬蜱科)是一种在全球范围内发现的三宿主犬蜱,能够在室内完成其整个生命周期。血红扇头蜱的管理选择有限,其控制主要仅依赖于少数杀螨活性成分。先前的研究已证实血红扇头蜱种群对氯菊酯具有抗性,对氟虫腈具有耐受性,这通常是由代谢解毒或靶位点突变引起的。在此,使用增效剂阻断代谢酶,对五株氯菊酯抗性蜱和三株氟虫腈耐受性蜱进行了代谢抗性评估。使用磷酸三苯酯(TPP)抑制酯酶、胡椒基丁醚(PBO)抑制细胞色素P450以及马来酸二乙酯(DEM)抑制谷胱甘肽-S-转移酶完成了增效剂研究。此外,使用凝胶电泳证实了酯酶活性增加。氯菊酯抗性蜱中最重要的代谢解毒机制是酯酶活性增加,其次是细胞色素P450活性增加。代谢酶的抑制对氟虫腈耐受性蜱株没有显著影响。

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