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Two-Locus Heterogeneity Cannot Be Distinguished from Two-Locus Epistasis on the Basis of Affected-Sib-Pair Data

机译:基于受影响的同胞对数据无法区分两基因座上位的两基因座异质性

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摘要

The observation of multiple linkage signals in the course of conducting genome screens for complex disorders raises the question of whether distinct genes represent independent causes of disease (heterogeneity) or whether they interact to produce the phenotype of interest (epistasis); and there has been a corresponding interest in statistical methods for detecting and/or exploiting the distinction between these two possibilities. At the same time, researchers are increasingly relying on affected-sib-pair (ASP) data. Here, we demonstrate an apparently unrecognized fact about two-locus (2L) models and ASP data, namely, 2L heterogeneity and 2L epistasis cannot, in general, be distinguished from one another on the basis of ASP marker data, as a matter of mathematical principle and therefore regardless of sample size. By the same token, correlations across ASPs in single-locus LOD scores or other measures also cannot be used to distinguish 2L heterogeneity from 2L epistasis. This raises questions about the measurement of gene-gene interactions in terms of patterns of correlation in marker data. Portions of our results carry over to larger pedigree structures as well, as long as only affected individuals are included in analyses; the extent to which our overall findings apply to general pedigrees (including unaffected individuals) remains to be investigated.
机译:在对复杂疾病进行基因组筛选的过程中,对多个连锁信号的观察提出了一个问题,即不同的基因是否代表疾病的独立原因(异质性),或者它们是否相互作用以产生感兴趣的表型(表皮症);因此,对于检测和/或利用这两种可能性之间的区别的统计方法有了相应的兴趣。同时,研究人员越来越依赖受影响的同胞对(ASP)数据。在这里,我们证明了关于两基因座(2L)模型和ASP数据的一个显然无法识别的事实,即2L异质性和2L上位性通常不能在ASP标记数据的基础上彼此区分开,这是数学上的问题原理,因此不考虑样本量。同样,单位置LOD得分或其他度量中ASP之间的相关性也不能用于区分2L异质性和2L上位性。这就提出了有关根据标记数据中相关模式对基因-基因相互作用进行测量的问题。只要只将受影响的个体包括在分析中,我们的结果的一部分也将延续到更大的谱系结构中。我们的总体发现在多大程度上适用于一般家谱(包括未受影响的个体),尚待调查。

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