Calculating Within-Pair Difference Scores in the Co-twin Control Design. Effects of Alternative Strategies.

IF 2.6 4区 医学 Q2 BEHAVIORAL SCIENCES Behavior Genetics Pub Date : 2024-09-01 Epub Date: 2024-08-23 DOI:10.1007/s10519-024-10196-9
Juan J Madrid-Valero, Brad Verhulst, José A López-López, Juan R Ordoñana
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Abstract

Co-twin studies are an elegant and powerful design that allows controlling for the effect of confounding variables, including genetic and a range of environmental factors. There are several approaches to carry out this design. One of the methods commonly used, when contrasting continuous variables, is to calculate difference scores between members of a twin pair on two associated variables, in order to analyse the covariation of such differences. However, information regarding whether and how the different ways of estimating within-pair difference scores may impact the results is scant. This study aimed to compare the results obtained by different methods of data transformation when performing a co-twin study and test how the magnitude of the association changes using each of those approaches. Data was simulated using a direction of causation model and by fixing the effect size of causal path to low, medium, and high values. Within-pair difference scores were calculated as relative scores for diverse within-pair ordering conditions or absolute scores. Pearson's correlations using relative difference scores vary across the established scenarios (how twins were ordered within pairs) and these discrepancies become larger as the within-twin correlation increases. Absolute difference scores tended to produce the lowest correlation in every condition. Our results show that both using absolute difference scores or ordering twins within pairs, may produce an artificial decrease in the magnitude of the studied association, obscuring the ability to detect patterns compatible with causation, which could lead to discrepancies across studies and erroneous conclusions.

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在同卵双胞对照设计中计算对内差分。替代策略的效果。
同卵双胞胎研究是一种优雅而强大的设计,可以控制混杂变量的影响,包括遗传因素和一系列环境因素。进行这种设计有多种方法。在对连续变量进行对比时,常用的方法之一是计算一对孪生子成员在两个相关变量上的差异分数,以分析这些差异的协变性。然而,有关估算配对内差异分数的不同方法是否会影响结果以及如何影响结果的信息却很少。本研究旨在比较在进行同卵双生子研究时采用不同数据转换方法所得到的结果,并测试采用每种方法时相关性的大小会发生怎样的变化。数据模拟采用了因果关系方向模型,并将因果关系路径的效应大小固定为低、中和高值。配对内差异得分被计算为不同配对内排序条件的相对得分或绝对得分。使用相对差异得分的皮尔逊相关性在不同的既定方案(双胞胎在配对内的排序方式)中各不相同,这些差异随着双胞胎内相关性的增加而变大。绝对差分往往在每种情况下产生最低的相关性。我们的研究结果表明,无论是使用绝对差异分数还是对双胞胎进行排序,都可能会人为地降低所研究关联的幅度,从而掩盖检测与因果关系相符模式的能力,这可能会导致不同研究之间的差异和错误的结论。
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来源期刊
Behavior Genetics
Behavior Genetics 生物-行为科学
CiteScore
4.90
自引率
7.70%
发文量
30
审稿时长
6-12 weeks
期刊介绍: Behavior Genetics - the leading journal concerned with the genetic analysis of complex traits - is published in cooperation with the Behavior Genetics Association. This timely journal disseminates the most current original research on the inheritance and evolution of behavioral characteristics in man and other species. Contributions from eminent international researchers focus on both the application of various genetic perspectives to the study of behavioral characteristics and the influence of behavioral differences on the genetic structure of populations.
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