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Evaluation of a Partial Genome Screening of Two Asthma Susceptibility Regions Using Bayesian Network Based Bayesian Multilevel Analysis of Relevance

机译:使用基于贝叶斯网络的相关性贝叶斯多级分析评估两个哮喘易感性地区的部分基因组筛选

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摘要

Genetic studies indicate high number of potential factors related to asthma. Based on earlier linkage analyses we selected the 11q13 and 14q22 asthma susceptibility regions, for which we designed a partial genome screening study using 145 SNPs in 1201 individuals (436 asthmatic children and 765 controls). The results were evaluated with traditional frequentist methods and we applied a new statistical method, called Bayesian network based Bayesian multilevel analysis of relevance (BN-BMLA). This method uses Bayesian network representation to provide detailed characterization of the relevance of factors, such as joint significance, the type of dependency, and multi-target aspects. We estimated posteriors for these relations within the Bayesian statistical framework, in order to estimate the posteriors whether a variable is directly relevant or its association is only mediated.With frequentist methods one SNP (rs3751464 in the FRMD6 gene) provided evidence for an association with asthma (OR = 1.43(1.2–1.8); p = 3×10−4). The possible role of the FRMD6 gene in asthma was also confirmed in an animal model and human asthmatics.In the BN-BMLA analysis altogether 5 SNPs in 4 genes were found relevant in connection with asthma phenotype: PRPF19 on chromosome 11, and FRMD6, PTGER2 and PTGDR on chromosome 14. In a subsequent step a partial dataset containing rhinitis and further clinical parameters was used, which allowed the analysis of relevance of SNPs for asthma and multiple targets. These analyses suggested that SNPs in the AHNAK and MS4A2 genes were indirectly associated with asthma. This paper indicates that BN-BMLA explores the relevant factors more comprehensively than traditional statistical methods and extends the scope of strong relevance based methods to include partial relevance, global characterization of relevance and multi-target relevance.
机译:遗传学研究表明大量与哮喘有关的潜在因素。基于早期的连锁分析,我们选择了11q13和14q22哮喘易感性区域,为此我们设计了1201个人(436名哮喘儿童和765名对照)中使用145个SNP进行的部分基因组筛选研究。使用传统的频度方法对结果进行评估,我们应用了一种新的统计方法,称为基于贝叶斯网络的贝叶斯相关性多级分析(BN-BMLA)。此方法使用贝叶斯网络表示来提供因素相关性的详细表征,例如联合重要性,依赖性类型和多目标方面。我们在贝叶斯统计框架内估计了这些关系的后验者,以便估计后验者变量是直接相关还是仅是介导的关联。采用频繁性方法,一个SNP(FRMD6基因中的rs3751464)提供了与哮喘关联的证据。 (OR = 1.43(1.2–1.8); p = 3×10 -4 )。在动物模型和人类哮喘患者中也证实了FRMD6基因在哮喘中的可能作用。在BN-BMLA分析中,发现4个基因中的5个SNP与哮喘表型有关:11号染色体上的PRPF19和FRMD6,PTGER2以及14号染色体上的PTGDR。在随后的步骤中,使用了包含鼻炎和其他临床参数的部分数据集,该数据集可以分析SNP与哮喘和多个靶标的相关性。这些分析表明,AHNAK和MS4A2基因中的SNP与哮喘间接相关。本文指出,与传统的统计方法相比,BN-BMLA更加全面地探索了相关因素,并将基于强相关性的方法的范围扩展到包括部分相关性,相关性的全局表征和多目标相关性。

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