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用于映射生存性状基因组印迹的参数比例风险模型。

Parametric proportional hazards model for mapping genomic imprinting of survival traits.

机构信息

Institute of Animal Sciences, Chinese Academy of Agricultural Sciences, Beijing, 100193, People's Republic of China.

出版信息

J Appl Genet. 2013 Feb;54(1):79-88. doi: 10.1007/s13353-012-0120-2. Epub 2012 Nov 7.

Abstract

A number of imprinted genes have been observed in plants, animals and humans. They not only control growth and developmental traits, but may also be responsible for survival traits. Based on the Cox proportional hazards (PH) model, we constructed a general parametric model for dissecting genomic imprinting, in which a baseline hazard function is selectable for fitting the effects of imprinted quantitative trait loci (iQTL) genotypes on the survival curve. The expectation-maximisation (EM) algorithm is derived for solving the maximum likelihood estimates of iQTL parameters. The imprinting patterns of the detected iQTL are statistically tested under a series of null hypotheses. The Bayesian information criterion (BIC) model selection criterion is employed to choose an optimal baseline hazard function with maximum likelihood and parsimonious parameterisation. We applied the proposed approach to analyse the published data in an F(2) population of mice and concluded that, among five commonly used survival distributions, the log-logistic distribution is the optimal baseline hazard function for the survival time of hyperoxic acute lung injury (HALI). Under this optimal model, five QTL were detected, among which four are imprinted in different imprinting patterns.

摘要

许多印迹基因在植物、动物和人类中都有观察到。它们不仅控制生长和发育特征,还可能负责生存特征。基于 Cox 比例风险(PH)模型,我们构建了一个用于剖析基因组印迹的通用参数模型,其中可选择基线风险函数来拟合印迹数量性状基因座(iQTL)基因型对生存曲线的影响。导出了期望最大化(EM)算法来求解 iQTL 参数的最大似然估计。在一系列零假设下对检测到的 iQTL 的印迹模式进行统计检验。贝叶斯信息准则(BIC)模型选择准则用于选择具有最大似然和简约参数化的最佳基线风险函数。我们应用所提出的方法来分析在小鼠 F(2)群体中发表的数据,并得出结论,在五种常用的生存分布中,对数逻辑分布是用于高氧急性肺损伤(HALI)的生存时间的最佳基线风险函数。在这个最优模型下,检测到五个 QTL,其中四个具有不同的印迹模式。

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