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Molecular definition of cytochrome P450-mediated multiple resistance in Helicoverpa zea.

机译:Helicoverpa zea中细胞色素P450介导的多重抗性的分子定义。

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摘要

For four decades, it has been hypothesized that the ability of herbivorous insects to cope with a toxin-rich diet serves as a pre-adaptation for the acquisition of insecticide resistance. To evaluate this hypothesis, I conducted a series of experiments with Helicoverpa zea, a polyphagous noctuid of economic importance. Studies at the population level demonstrated that exposure to xanthotoxin, a linear furanocoumarin, enhanced resistance to the insecticide cypermethrin. Piperonyl butoxide (PBO) synergism and biochemical assays demonstrated that cytochrome P450s are responsible for the documented cross-resistance and that metabolism of these two compounds is mediated by at least one P450. Closely related P450s in the CYP6B subfamily (CYP6B8, CYP6B9, CYP6B27, CYP6B28) are cloned from this species. Phylogenic analysis indicated that these four CYP6B genes represent products of repeated duplication of an ancestral CYP6B gene with recent 5-polar gene conversions. Analyses of induction patterns indicated that transcriptions of these P450 genes are induced from their basal expression levels in midgut and/or fatbody by the plant defense signaling molecules jasmonate and salicylate, by plant defense end products xanthotoxin, idole-3-carbinol, chlorogenic acid, and flavone, and by a synthetic chemical not naturally encountered, phenobarbital. Molecular modeling indicated that CYP6B8, representative of the four H. zea CYP6B proteins has more flexible overall folding, a larger and more elastic catalytic pocket, and two more substrate access channels than has the CYP6B1 from the specialist Papilio polyxenes. Baculovirus-mediated expression of CYP6B8 and CYP6B1 demonstrates that CYP6B8 is able to metabolize six biosynthetically diverse plant allelochemicals (xanthotoxin, quercetin, flavone, chlorogenic acid, indole-3-carbinol, and rutin) and three insecticides (diazinon, cypermethrin and aldrin), whereas CYP6B1 metabolizes only two of these allelochemicals (xanthotoxin and flavone) and one insecticide (diazinon). These results not only provide compelling genetic and molecular evidence for the ecological/evolutionary association between insecticide resistance and allelochemical adaptation, but also demonstrate that insects arm themselves against subsequent build-up of hostplant toxins by “eavesdropping” on plant defense signals. These results also suggest that, at least in the species examined, counterdefense proteins from generalists are structurally more flexible and functionally more diverse than those from specialists.
机译:四十年来,一直有人假设草食性昆虫应对富含毒素饮食的能力可以作为获得抗药性的一种预适应方法。为了评估这一假设,我对具有经济重要性的多食性夜蛾科 Helicoverpa zea 进行了一系列实验。人群水平的研究表明,暴露于黄嘌呤毒素(一种线性呋喃香豆素)可增强对杀虫剂氯氰菊酯的抗性。胡椒基丁醚(PBO)协同作用和生化分析表明,细胞色素P450负责记录的交叉耐药性,并且这两种化合物的代谢由至少一种P450介导。 CYP6B 子家族中的密切相关的P450( CYP6B8 CYP6B9 CYP6B27 CYP6B28 )是从该物种克隆的。系统发育分析表明,这四个 CYP6B 基因代表了一个祖先 CYP6B 基因最近重复的复制,具有最近的5 '-极性基因转换。诱导模式分析表明,这些P450基因的转录是由植物防御信号分子茉莉酸和水杨酸酯,植物防御终产物黄嘌呤毒素,异丁烯3-甲醇,绿原酸,和黄酮,以及非天然合成的苯巴比妥。分子建模表明CYP6B8代表四个。 zea CYP6B蛋白比来自 Papilio polyxenes 的CYP6B1具有更灵活的整体折叠,更大和更有弹性的催化口袋以及两个更多的底物通道。杆状病毒介导的CYP6B8和CYP6B1的表达表明CYP6B8能够代谢六种生物合成不同的植物化感物质(黄嘌呤毒素,槲皮素,黄酮,绿原酸,吲哚-3-卡宾醇和芦丁)和三种杀虫剂(重氮,茜草素,啶)而CYP6B1仅代谢这些化感物质中的两种(黄腐毒素和黄酮)和一种杀虫剂(二嗪农)。这些结果不仅为杀虫剂抗性与化感物质适应性之间的生态/进化联系提供了令人信服的遗传和分子证据,而且还表明昆虫可以通过“窃听”植物防御信号来武装自己,抵御随后积累的宿主植物毒素。这些结果还表明,至少在所检查的物种中,与来自专家的抗辩蛋白相比,来自于通才的抗辩蛋白在结构上更加灵活,功能上也更加多样化。

著录项

  • 作者

    Li, Xianchun.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Biology Entomology.; Biology Molecular.; Biology Ecology.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 244 p.
  • 总页数 244
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 昆虫学;分子遗传学;生态学(生物生态学);
  • 关键词

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