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Two-step intermediate fine mapping with likelihood ratio test statistics: applications to Problems 2 and 3 data of GAW15

机译:具有似然比检验统计量的两步中间精细映射:应用于GAW15的问题2和3数据

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摘要

Construction of precise confidence sets of disease gene locations after initial identification of linked regions can improve the efficiency of the ensuing fine mapping effort. We took the confidence set inference, a framework proposed and implemented using the Mean test statistic (CSI-Mean) and improved the efficiency substantially by using a likelihood ratio test statistic (CSI-MLS). The CSI framework requires knowledge of some disease-model-related parameters. In the absence of prior knowledge of these parameters, a two-step procedure may be employed: 1) the parameters are estimated using a coarse map of markers; 2) CSI-Mean or CSI-MLS are applied to construct the confidence sets of the disease gene locations using a finer map of markers, assuming the estimates from Step 1 for the required parameters. In this article we show that the advantages of CSI-MLS over CSI-Mean, previously demonstrated when the required parameters are known, are preserved in this two-step procedure, using both the simulated and real data contributed to Problems 2 and 3 of Genetic Analysis Workshop 15. In addition, our result suggests that microsatellite data, when available, should be used in Step 1. Also explored in detail is the effect of the absence of parental genotypes on the performance of CSI-MLS.
机译:在初步确定链接区域后,构建疾病基因位置的精确置信度集可以提高随后进行精细作图的效率。我们采用置信度集推论,这是一个使用均值检验统计量(CSI-Mean)提出并实施的框架,并通过使用似然比检验统计量(CSI-MLS)大大提高了效率。 CSI框架要求了解一些与疾病模型相关的参数。在没有这些参数的先验知识的情况下,可以采用两步过程:1)使用粗略的标记图估计参数; 2)使用CSI-Mean或CSI-MLS,使用更精细的标记图构建疾病基因位置的置信度集,并假设步骤1中对所需参数的估计。在本文中,我们证明了使用已知的遗传数据问题2和问题3的模拟数据和实际数据,在此两步过程中保留了CSI-MLS相对于CSI-Mean的优势(先前已在所需参数已知时进行了演示) Analysis Workshop15。此外,我们的结果表明,在步骤1中应使用微卫星数据(如果可用)。还详细探讨了缺少亲本基因型对CSI-MLS性能的影响。

著录项

  • 期刊名称 BMC Proceedings
  • 作者

    Ritwik Sinha; Yuqun Luo;

  • 作者单位
  • 年(卷),期 2007(1),Suppl 1
  • 年度 2007
  • 页码 S146
  • 总页数 5
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

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