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Gene duplications circumvent trade-offs in enzyme function: Insect adaptation to toxic host plants

机译:基因复制规避了酶功能的折衷:昆虫对有毒宿主植物的适应

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Herbivorous insects and their adaptations against plant toxins provide striking opportunities to investigate the genetic basis of traits involved in coevolutionary interactions. Target site insensitivity to cardenolides has evolved convergently across six orders of insects, involving identical substitutions in the Na, K-ATPase gene and repeated convergent gene duplications. The large milkweed bug, Oncopeltus fasciatus, has three copies of the Na, K-ATPase a-subunit gene that bear differing numbers of amino acid substitutions in the binding pocket for cardenolides. To analyze the effect of these substitutions on cardenolide resistance and to infer possible trade-offs in gene function, we expressed the cardenolide-sensitive Na, K-ATPase of Drosophila melanogaster in vitro and introduced four distinct combinations of substitutions observed in the three gene copies of O. fasciatus. With an increasing number of substitutions, the sensitivity of the Na, K-ATPase to a standard cardenolide decreased in a stepwise manner. At the same time, the enzyme's overall activity decreased significantly with increasing cardenolide resistance and only the least substituted mimic of the Na, K-ATPase alpha 1C copy maintained activity similar to the wild-type enzyme. Our results suggest that the Na, K-ATPase copies in O. fasciatus have diverged in function, enabling specific adaptations to dietary cardenolides while maintaining the functionality of this critical ion carrier.
机译:食草昆虫及其对植物毒素的适应性提供了惊人的机会来研究参与协同进化相互作用的性状的遗传基础。靶点对烯醇类内酯的不敏感性在六个昆虫阶上逐渐演变,涉及Na,K-ATPase基因的相同取代和重复的收敛基因重复。大型乳草臭虫Oncopeltus fasciatus具有三个拷贝的Na,K-ATPaseα亚基基因,它们在烯醇内酯的结合口袋中具有不同数量的氨基酸取代。为了分析这些替代对心烯醇内酯抗性的影响并推断基因功能的可能取舍,我们在体外表达了果蝇对心烯醇内酯敏感的Na,K-ATPase,并介绍了在三种基因拷贝中观察到的四种不同的替代组合fasciatus。随着取代次数的增加,Na,K-ATPase对标准烯醇内酯的敏感性逐步降低。同时,该酶的总体活性随对烯属内酯的抗性的增加而显着降低,并且只有取代程度最低的Na,K-ATPaseα1C拷贝模拟物保持了与野生型酶相似的活性。我们的研究结果表明,筋膜念珠菌中的Na,K-ATPase拷贝在功能上有所不同,从而能够对饮食中的烯醇内酯进行特定的适应,同时保持该关键离子载体的功能。

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