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PROMISE: a tool to identify genomic features with a specific biologically interesting pattern of associations with multiple endpoint variables

机译:PROMISE:一种工具,用于识别具有特定生物学趣味性模式且与多个终点变量相关联的基因组特征

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Motivation: In some applications, prior biological knowledge can be used to define a specific pattern of association of multiple endpoint variables with a genomic variable that is biologically most interesting. However, to our knowledge, there is no statistical procedure designed to detect specific patterns of association with multiple endpoint variables.Results: Projection onto the most interesting statistical evidence (PROMISE) is proposed as a general procedure to identify genomic variables that exhibit a specific biologically interesting pattern of association with multiple endpoint variables. Biological knowledge of the endpoint variables is used to define a vector that represents the biologically most interesting values for statistics that characterize the associations of the endpoint variables with a genomic variable. A test statistic is defined as the dot-product of the vector of the observed association statistics and the vector of the most interesting values of the association statistics. By definition, this test statistic is proportional to the length of the projection of the observed vector of correlations onto the vector of most interesting associations. Statistical significance is determined via permutation. In simulation studies and an example application, PROMISE shows greater statistical power to identify genes with the interesting pattern of associations than classical multivariate procedures, individual endpoint analyses or listing genes that have the pattern of interest and are significant in more than one individual endpoint analysis.Availability: Documented R routines are freely available from www.stjuderesearch.org/depts/biostats and will soon be available as a Bioconductor package from www.bioconductor.org.Contact: stanley.poundstjude.orgSupplementary information: Supplementary data are available at Bioinformatics online.
机译:动机:在某些应用中,可以使用先验的生物学知识来定义多个终点变量与生物学上最有趣的基因组变量的特定关联模式。然而,据我们所知,没有设计用于检测与多个终点变量相关联的特定模式的统计程序。结果:建议将投影到最有趣的统计证据(PROMISE)作为识别表现出特定生物学特性的基因组变量的通用程序与多个端点变量关联的有趣模式。端点变量的生物学知识用于定义一个矢量,该矢量表示生物学上最有趣的值,用于统计量,这些统计量表征了端点变量与基因组变量的关联。测试统计量定义为观察到的关联统计量的向量与关联统计量中最有趣的值的向量的点积。根据定义,该检验统计量与观察到的相关矢量在最有趣的关联矢量上的投影长度成比例。统计重要性通过排列确定。在仿真研究和示例应用程序中,PROMISE显示出比传统的多变量程序,单个终点分析或列出具有目标模式并且在多个终点分析中均具有重要意义的基因更强大的统计能力,可用于识别具有有趣关联模式的基因。可用性:可从www.stjuderesearch.org/depts/biostats免费获得记录的R例程,并将很快从www.bioconductor.org以Bioconductor软件包的形式获得。联系方式:stanley.poundstjude.org补充信息:补充数据可从在线生物信息学获得。

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