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Identifying candidate gene effects by restricting search space in a multivariate genetic analysis of white matter microstructure

机译:在白质微观结构的多元遗传分析中,通过限制搜索空间来识别候选基因效应

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Several genetic variants are thought to influence white matter (WM) integrity, measured with diffusion tensor imaging (DTI). Voxel based methods can test genetic associations, but heavy multiple comparisons corrections are required to adjust for searching the whole brain and for all genetic variants analyzed. Thus, genetic associations are hard to detect even in large studies. Using a recently developed multi-SNP analysis, we examined the joint predictive power of a group of 18 cholesterol-related single nucleotide polymorphisms (SNPs) on WM integrity, measured by fractional anisotropy. To boost power, we limited the analysis to brain voxels that showed significant associations with total serum cholesterol levels. From this space, we identified two genes with effects that replicated in individual voxel-wise analyses of the whole brain. Multivariate analyses of genetic variants on a reduced anatomical search space may help to identify SNPs with strongest effects on the brain from a broad panel of genes.
机译:据认为,几种遗传变异会影响白质(WM)完整性,可通过扩散张量成像(DTI)进行测量。基于体素的方法可以测试遗传关联,但是需要进行大量的多次比较校正才能调整范围,以搜索整个大脑和分析的所有遗传变异。因此,即使在大型研究中,也很难检测到遗传关联。使用最近开发的多SNP分析,我们检查了一组18个与胆固醇相关的单核苷酸多态性(SNP)对WM完整性的联合预测能力,通过分数各向异性测量。为了增强功能,我们将分析限制在显示与总血清胆固醇水平显着相关的脑素。从这个空间,我们确定了两个基因,这些基因的作用在整个大脑的各个体素分析中得以复制。在减少的解剖搜索空间上对遗传变异进行多变量分析可能有助于从广泛的基因组中鉴定对大脑影响最强的SNP。

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