School of Biological Sciences, University of Utah, Salt Lake City, UT, USA.
Department of Plants and Crops, Faculty of Bioscience Engineering, Ghent University, Ghent, Belgium.
Nat Commun. 2023 Aug 17;14(1):4990. doi: 10.1038/s41467-023-40778-w.
The role, magnitude, and molecular nature of trans-driven expression variation underlying the upregulation of detoxification genes in pesticide resistant arthropod populations has remained enigmatic. In this study, we performed expression quantitative trait locus (eQTL) mapping (n = 458) between a pesticide resistant and a susceptible strain of the generalist herbivore and crop pest Tetranychus urticae. We found that a single trans eQTL hotspot controlled large differences in the expression of a subset of genes in different detoxification gene families, as well as other genes associated with host plant use. As established by additional genetic approaches including RNAi gene knockdown, a duplicated gene with a nuclear hormone receptor HR96-related ligand-binding domain was identified as causal for the expression differences between strains. The presence of a large family of HR96-related genes in T. urticae may enable modular control of detoxification and host plant use genes, facilitating this species' known and rapid evolution to diverse pesticides and host plants.
在抗农药的节肢动物种群中,解毒基因上调的背后,转录驱动表达变异的作用、程度和分子性质一直是个谜。在这项研究中,我们对普通草食性和作物害虫——二斑叶螨的抗药性和敏感性品系之间进行了表达数量性状基因座 (eQTL) 作图 (n = 458)。我们发现,一个单一的转录 eQTL 热点控制了不同解毒基因家族中一组基因以及其他与宿主植物利用相关基因的表达的巨大差异。通过包括 RNAi 基因敲低在内的其他遗传方法证实,一个具有核激素受体 HR96 相关配体结合域的重复基因是导致两个品系之间表达差异的原因。在二斑叶螨中存在大量的 HR96 相关基因家族,这可能使其能够对解毒和宿主植物利用基因进行模块化控制,从而促进该物种对各种农药和宿主植物的快速进化。