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Fitting Procedures for Novel Gene-by-Measured Environment Interaction Models in Behavior Genetic Designs

机译:行为遗传设计中新的按测量基因与环境相互作用模型的拟合程序

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摘要

For quantitative behavior genetic (e.g., twin) studies, Purcell proposed a novel model for testing gene-by-measured environment (GxM) interactions while accounting for gene-by-environment correlation. Rathouz et al. expanded this model into a broader class of non-linear biometric models for quantifying and testing such interactions. In this work, we propose a novel factorization of the likelihood for this class of models, and adopt numerical integration techniques to achieve model estimation, especially for those without close-form likelihood. The validity of our procedures is established through numerical simulation studies. The new procedures are illustrated in a twin study analysis of the moderating effect of birth weight on the genetic influences on childhood anxiety. A second example is given in an online appendix. Both the exant GxM models and the new non-linear models critically assume normality of all structural components, which implies continuous, but not normal, manifest response variables.
机译:对于定量行为遗传学(例如,双胞胎)研究,珀塞尔提出了一种新型模型,用于测试按基因测量的环境(GxM)相互作用同时考虑基因与环境之间的相关性。 Rathouz等。将该模型扩展到更广泛的非线性生物特征模型类别,以量化和测试这种相互作用。在这项工作中,我们提出了此类模型的可能性的新颖分解,并采用数值积分技术来实现模型估计,尤其是对于那些没有近似形式可能性的模型。我们的程序的有效性是通过数值模拟研究确定的。在一项关于出生体重对遗传因素对儿童焦虑的调节作用的调节作用的双胞胎研究分析中说明了新程序。在线附录中给出了第二个示例。现有的GxM模型和新的非线性模型都严格假定所有结构组件的正态性,这暗示了连续但非正常的明显响应变量。

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