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On Study Design in Neuroimaging Heritability Analyses

机译:神经影像遗传力分析的研究设计

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Imaging genetics is an emerging methodology that combines genetic information with imaging-derived metrics to understand how genetic factors impact observable structural, functional, and quantitative phenotypes. Many of the most well-known genetic studies are based on Genome-Wide Association Studies (GWAS), which use large populations of related or unrelated individuals to associate traits and disorders with individual genetic factors. Merging imaging and genetics may potentially lead to improved power of association in GWAS because imaging traits may be more sensitive phenotypes, being closer to underlying genetic mechanisms, and their quantitative nature inherently increases power. We are developing SOLAR-ECLIPSE (SE) imaging genetics software which is capable of performing genetic analyses with both large-scale quantitative trait data and family structures of variable complexity. This program can estimate the contribution of genetic commonality among related subjects to a given phenotype, and essentially answer the question of whether or not the phenotype is heritable. This central factor of interest, heritability, offers bounds on the direct genetic influence over observed phenotypes. In order for a trait to be a good phenotype for GWAS, it must be heritable: at least some proportion of its variance must be due to genetic influences. A variety of family structures are commonly used for estimating heritability, yet the variability and biases for each as a function of the sample size are unknown. Herein, we investigate the ability of SOLAR to accurately estimate heritability models based on imaging data simulated using Monte Carlo methods implemented in R. We characterize the bias and the variability of heritability estimates from SOLAR as a function of sample size and pedigree structure (including twins, nuclear families, and nuclear families with grandparents).
机译:影像遗传学是一种新兴的方法,将遗传信息与影像衍生指标结合在一起,以了解遗传因素如何影响可观察的结构,功能和定量表型。许多最著名的遗传研究都基于全基因组关联研究(GWAS),该研究使用大量相关或不相关的个​​体来将性状和疾病与个体遗传因素相关联。影像学和遗传学的合并可能会导致GWAS的关联能力提高,因为影像学特征可能是更敏感的表型,更接近潜在的遗传机制,并且它们的定量性质会固有地提高能力。我们正在开发SOLAR-ECLIPSE(SE)成像遗传学软件,该软件能够对大规模定量性状数据和可变复杂性的家族结构进行遗传分析。该程序可以估计相关受试者之间遗传共性对给定表型的贡献,并从根本上回答该表型是否可遗传的问题。这个重要的中心因素,即遗传力,对观察到的表型的直接遗传影响提供了界限。为了使一个性状成为GWAS的良好表型,它必须是可遗传的:其变异的至少一部分必须归因于遗传影响。通常使用各种家族结构来估计遗传力,但是每个样本的变异性和偏倚随样本大小的变化是未知的。在本文中,我们研究了SOLAR基于使用R中实施的蒙特卡洛方法模拟的成像数据准确估计遗传力模型的能力。我们将SOLAR的遗传力估计值的偏倚和变异性表征为样本量和血统结构(包括双胞胎)的函数,核心家庭以及有祖父母的核心家庭)。

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