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A link between host plant adaptation and pesticide resistance in the polyphagous spider mite Tetranychus urticae

荨麻疹叶螨 生物 通才与专种 蜘蛛螨 适应(眼睛) 食草动物 抗药性 寄主(生物学) 杀虫剂 宿主适应 叶螨 杀螨剂 抗性(生态学) 植物 基因 生态学 遗传学 栖息地 基因组 神经科学
作者
Wannes Dermauw,Nicky Wybouw,Stéphane Rombauts,Björn Menten,John Vontas,Miodrag Grbić,Richard M. Clark,René Feyereisen,Thomas Van Leeuwen
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:110 (2) 被引量:375
标识
DOI:10.1073/pnas.1213214110
摘要

Plants produce a wide range of allelochemicals to defend against herbivore attack, and generalist herbivores have evolved mechanisms to avoid, sequester, or detoxify a broad spectrum of natural defense compounds. Successful arthropod pests have also developed resistance to diverse classes of pesticides and this adaptation is of critical importance to agriculture. To test whether mechanisms to overcome plant defenses predispose the development of pesticide resistance, we examined adaptation of the generalist two-spotted spider mite, Tetranychus urticae , to host plant transfer and pesticides. T. urticae is an extreme polyphagous pest with more than 1,100 documented hosts and has an extraordinary ability to develop pesticide resistance. When mites from a pesticide-susceptible strain propagated on bean were adapted to a challenging host (tomato), transcriptional responses increased over time with ∼7.5% of genes differentially expressed after five generations. Whereas many genes with altered expression belonged to known detoxification families (like P450 monooxygenases), new gene families not previously associated with detoxification in other herbivores showed a striking response, including ring-splitting dioxygenase genes acquired by horizontal gene transfer. Strikingly, transcriptional profiles of tomato-adapted mites resembled those of multipesticide-resistant strains, and adaptation to tomato decreased the susceptibility to unrelated pesticide classes. Our findings suggest key roles for both an expanded environmental response gene repertoire and transcriptional regulation in the life history of generalist herbivores. They also support a model whereby selection for the ability to mount a broad response to the diverse defense chemistry of plants predisposes the evolution of pesticide resistance in generalists.
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