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Partial correlation analysis indicates causal relationships between GC-content, exon density and recombination rate variation in the human genome

机译:部分相关性分析表明人类基因组中GC含量,外显子密度和重组率变异之间的因果关系

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Background: Several features are known to correlate with the GC-content in the human genome, including recombination rate, gene density and distance to telomere. However, by testing for pairwise correlation only, it is impossible to distinguish direct associations from indirect ones and to distinguish between causes and effects.Results: We use partial correlations to construct partially directed graphs for the following four variables: GC-content, recombination rate, exon density and distance-to-telomere. Recombination rate and exon density are unconditionally uncorrelated, but become inversely correlated by conditioning on GC-content. This pattern indicates a model where recombination rate and exon density are two independent causes of GC-content variation.Conclusions: Causal inference and graphical models are useful methods to understand genome evolution and the mechanisms of isochore evolution in the human genome.
机译:背景:已知几个特征与人类基因组中的GC含量相关,包括重组率,基因密度和与端粒距离的距离。但是,通过仅测试成对相关性,无法区分与间接相关的直接关联并区分原因和效果。结果:我们使用部分相关性来构建以下四个变量的部分定向图:GC含量,重组率,外显子密度和距离到端子。重组率和外显子密度无条件不相关,但通过对GC含量的调节变得与转矩相反。该模式表明重组率和外显子密度是GC含量变化的两个独立原因的模型。结论:因果推断和图形模型是了解基因组进化的有用方法和人类基因组中的等学进化机制。

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