Independent Genetic Mapping Experiments Identify Diverse Molecular Determinants of Host Adaptation in a Generalist Herbivore.

IF 4.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ernesto Villacis-Perez, Femke De Graeve, Berdien De Beer, Seham Ali Alshami, Rick De Jong, Tim De Meyer, Thomas Van Leeuwen
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Abstract

Interactions between plants and herbivores promote evolutionary change. Studying the evolution of herbivore mechanisms aimed to cope with different host plant species is a critical intersection between evolutionary biology and sustainable pest management. Generalist herbivores are of particular interest, as hybridization between genetically distinct populations can increase the standing genetic variation and therefore the adaptive potential of the species. Tetranychus urticae is a generalist arthropod known for its adaptive potential, evidenced in its immense host range and ability to develop metabolic resistance to xenobiotics. However, the molecular underpinnings associated with the potential of host adaptation and the consequences of host adaptation in this, and many other pests remain elusive. Here, we use two independent, empirical approaches to identify and map the genetic basis of host plant performance and adaptation in genetically distinct populations of T. urticae. In the first approach, we subject a genetically diverse mite population to tomato selection and map genomic regions linked to the phenotypic evolution of increased reproductive performance. In the second approach, we map genomic regions responsible for performance on tomato by comparing the genomes of pooled individuals from an F2 backcross between populations with high and low reproductive performance. Both approaches revealed specific and shared genomic regions associated with host plant performance and adaptation and key candidate genes were identified. Our findings highlight the power of spider mite genetic approaches to identify the complex genetic basis of host adaptation in generalist herbivores.

植物与食草动物之间的相互作用促进了进化变化。研究旨在应对不同寄主植物物种的食草动物机制的进化,是进化生物学与可持续害虫管理之间的重要交叉点。一般食草动物尤其值得关注,因为基因不同的种群之间的杂交可以增加常存的遗传变异,从而提高物种的适应潜力。Tetranychus urticae 是一种以适应潜力著称的通性节肢动物,其巨大的寄主范围和对异种生物产生代谢抗性的能力证明了这一点。然而,与宿主适应潜力相关的分子基础以及宿主适应对这种害虫和许多其他害虫的影响仍然难以捉摸。在这里,我们使用两种独立的经验方法来确定和绘制 T. urticae 不同基因种群中寄主植物性能和适应性的遗传基础。在第一种方法中,我们将基因多样的螨虫种群置于番茄选择中,并绘制与繁殖性能提高的表型进化相关的基因组区域图谱。在第二种方法中,我们通过比较高繁殖性能种群和低繁殖性能种群之间 F2 回交的集合个体的基因组,绘制出与番茄上的表现有关的基因组区域。这两种方法都揭示了与寄主植物表现和适应性相关的特定和共享基因组区域,并确定了关键候选基因。我们的研究结果凸显了蜘蛛螨遗传方法在确定通性食草动物宿主适应性的复杂遗传基础方面的能力。
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来源期刊
Molecular Ecology
Molecular Ecology 生物-进化生物学
CiteScore
8.40
自引率
10.20%
发文量
472
审稿时长
1 months
期刊介绍: Molecular Ecology publishes papers that utilize molecular genetic techniques to address consequential questions in ecology, evolution, behaviour and conservation. Studies may employ neutral markers for inference about ecological and evolutionary processes or examine ecologically important genes and their products directly. We discourage papers that are primarily descriptive and are relevant only to the taxon being studied. Papers reporting on molecular marker development, molecular diagnostics, barcoding, or DNA taxonomy, or technical methods should be re-directed to our sister journal, Molecular Ecology Resources. Likewise, papers with a strongly applied focus should be submitted to Evolutionary Applications. Research areas of interest to Molecular Ecology include: * population structure and phylogeography * reproductive strategies * relatedness and kin selection * sex allocation * population genetic theory * analytical methods development * conservation genetics * speciation genetics * microbial biodiversity * evolutionary dynamics of QTLs * ecological interactions * molecular adaptation and environmental genomics * impact of genetically modified organisms
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