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Genome‐wide association analyses reveal polygenic genomic architecture underlying divergent shell morphology in Spanish Littorina saxatilis ecotypes

机译:全基因组关联分析揭示了西班牙冬凌草生态型不同壳形态的多基因组基因组结构

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摘要

Gene flow between diverging populations experiencing dissimilar ecological conditions can theoretically constrain adaptive evolution. To minimize the effect of gene flow, alleles underlying traits essential for local adaptation are predicted to be located in linked genome regions with reduced recombination. Local reduction in gene flow caused by selection is expected to produce elevated divergence in these regions. The highly divergent crab‐adapted and wave‐adapted ecotypes of the marine snail Littorina saxatilis present a model system to test these predictions. We used genome‐wide association (GWA) analysis of geometric morphometric shell traits associated with microgeographic divergence between the two L. saxatilis ecotypes within three separate sampling sites. A total of 477 snails that had individual geometric morphometric data and individual genotypes at 4,066 single nucleotide polymorphisms (SNPs) were analyzed using GWA methods that corrected for population structure among the three sites. This approach allowed dissection of the genomic architecture of shell shape divergence between ecotypes across a wide geographic range, spanning two glacial lineages. GWA revealed 216 quantitative trait loci (QTL) with shell size or shape differences between ecotypes, with most loci explaining a small proportion of phenotypic variation. We found that QTL were evenly distributed across 17 linkage groups, and exhibited elevated interchromosomal linkage, suggesting a genome‐wide response to divergent selection on shell shape between the two ecotypes. Shell shape trait‐associated loci showed partial overlap with previously identified outlier loci under divergent selection between the two ecotypes, supporting the hypothesis of diversifying selection on these genomic regions. These results suggest that divergence in shell shape between the crab‐adapted and wave‐adapted ecotypes is produced predominantly by a polygenic genomic architecture with positive linkage disequilibrium among loci of small effect.
机译:从理论上讲,经历不同生态条件的不同种群之间的基因流可以限制适应性进化。为了最小化基因流的影响,预测局部适应性必需的潜在等位基因等位基因位于重组减少的连锁基因组区域中。由选择引起的基因流的局部减少预计将在这些区域产生升高的差异。海洋蜗牛Littorina saxatilis高度适应螃蟹和适应波浪的生态型提出了一个模型系统来检验这些预测。我们使用了全基因组关联(GWA)来分析与三个独立采样点内的两种虎耳草生态型之间的微观地理差异相关的几何形态外壳特征。使用校正了这三个位点中的种群结构的GWA方法,对总共477只蜗牛进行了分析,这些蜗牛具有单独的几何形态学数据和4,066个单核苷酸多态性(SNP)的单独基因型。这种方法允许解剖跨越两个冰川世系的广泛地理范围内的生态型之间壳形差异的基因组结构。 GWA揭示了216个数量特征位点(QTL),其生态类型之间存在壳大小或形状差异,其中大多数位点解释了一小部分的表型变异。我们发现QTL均匀分布在17个连锁族中,并表现出较高的染色体间连锁性,这表明在全基因组范围内,两种生态型对壳形差异选择的反应。壳形特征相关的基因座在两种生态型之间的差异选择下显示出与先前确定的离群基因位点的部分重叠,支持了在这些基因组区域进行多样化选择的假说。这些结果表明,适应螃蟹和适应波浪的生态型之间的壳形差异主要是由多基因组基因组结构产生的,其基因座之间的连锁不平衡呈正相关。

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