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Combining meta- and mega- analytic approaches for multi-site diffusion imaging based genetic studies: From the ENIGMA-DTI working group

机译:结合基于荟萃分析和大规模分析的方法进行基于多位点扩散成像的遗传研究:来自ENIGMA-DTI工作组

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Meta-analyses estimate a statistical effect size for a test or an analysis by combining results from multiple studies without necessarily having access to each individual study's raw data. Multi-site meta-analysis is crucial for imaging genetics, as single sites rarely have a sample size large enough to pick up effects of single genetic variants associated with brain measures. However, if raw data can be shared, combining data in a “mega-analysis” is thought to improve power and precision in estimating global effects. As part of an ENIGMA-DTI investigation, we use fractional anisotropy (FA) maps from 5 studies (total N=2,203 subjects, aged 9–85) to estimate heritability. We combine the studies through meta- and mega-analyses as well as a mixture of the two — combining some cohorts with mega-analysis and meta-analyzing the results with those of the remaining sites. A combination of mega- and meta-approaches may boost power compared to meta-analysis alone.
机译:元分析通过合并多个研究的结果来估计测试或分析的统计效应大小,而不必访问每个研究的原始数据。多位元荟萃分析对于遗传学成像至关重要,因为单个位点很少有足够大的样本量来吸收与脑部测量相关的单个遗传变异的影响。但是,如果可以共享原始数据,则认为在“大型分析”中组合数据可以提高估计全局影响的能力和精度。作为ENIGMA-DTI调查的一部分,我们使用来自5项研究(总N = 2,203名受试者,年龄9-85岁)的分数各向异性(FA)图来估计遗传力。我们通过荟萃分析和大型分析以及两者的混合将研究结合起来,将一些队列与大型分析相结合,然后对其余站点的结果进行荟萃分析。与单独的荟萃分析相比,大型和荟萃方法的组合可能会增强功能。

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