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使用个体特定协变量的非参数连锁分析。

Nonparametric linkage analysis using person-specific covariates.

作者信息

Whittemore Alice S, Halpern Jerry

机构信息

Division of Epidemiology, Department of Health Research and Policy, Stanford University School of Medicine, Stanford, California 94305-5405, USA.

出版信息

Genet Epidemiol. 2006 Jul;30(5):369-79. doi: 10.1002/gepi.20153.

Abstract

Linkage analysis provides an important tool for mapping genes for complex disease. However its usefulness has been limited by inadequate marker density, inadequate sample sizes and the possibility that different genes account for different subtypes of the disease (phenotypic heterogeneity). The first two limitations can be addressed by high-density single nucleotide polymorphism (SNP) genotyping and the pooling of large sets of multiple-case families. Phenotypic heterogeneity can be addressed by analyses that weigh the contributions of affected family members according to characteristics of their disease phenotypes. Here we introduce a method for including such person-specific weights in nonparametric linkage analysis. We show with simulations that such weighting can provide stronger linkage signals when a causal polymorphism affects some manifestations of the disease more than others. We applied the method to prostate cancer linkage data in a region on chromosome 19p, and obtained higher lod scores by assigning weights of one to men with early-onset aggressive cancers, weights of zero to those with late-onset nonaggressive cancers, and intermediate weights to all other affected men. We have developed a modified version of GENEHUNTER that allows inclusion of person-specific weights in the nonparametric analyses. This program is freely available at http://med.stanford.edu/epidemiology/statisticalSoftware/weightedKAC.

摘要

连锁分析为复杂疾病相关基因的定位提供了一个重要工具。然而,其效用受到标记密度不足、样本量不足以及不同基因可能导致疾病的不同亚型(表型异质性)的限制。前两个限制可以通过高密度单核苷酸多态性(SNP)基因分型和大量多病例家系的汇集来解决。表型异质性可以通过根据受影响家庭成员疾病表型特征来权衡其贡献的分析来解决。在此,我们介绍一种在非参数连锁分析中纳入此类个体特异性权重的方法。我们通过模拟表明,当一个因果多态性对疾病的某些表现影响大于其他表现时,这种加权可以提供更强的连锁信号。我们将该方法应用于19号染色体短臂上一个区域的前列腺癌连锁数据,通过给早发性侵袭性癌症男性赋予权重1、晚发性非侵袭性癌症男性赋予权重0以及给所有其他受影响男性赋予中间权重,获得了更高的对数优势分数。我们开发了GENEHUNTER的一个修改版本,该版本允许在非参数分析中纳入个体特异性权重。该程序可在http://med.stanford.edu/epidemiology/statisticalSoftware/weightedKAC免费获取。

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