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Bayesian analysis of genetic architecture of quantitative trait using data of crosses of multiple inbred lines.

机译:利用多个自交系杂交数据对数量性状遗传结构进行贝叶斯分析。

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摘要

Using the data of crosses of multiple of inbred lines for mapping QTL can increase QTL detecting power compared with only cross of two inbred lines. Although many fixed-effect model methods have been proposed to analyze such data, they are largely based on one-QTL model or main effect model, and the interaction effects between QTL are always neglected. However, effectively separating the interaction effects from the residual error can increase the statistical power. In this article, we both extended the novel Bayesian model selection method and Bayesian shrinkage estimation approaches to multiple inbred line crosses. With two extensions, interacting QTL are effectively detected with high solution; in addition, the posterior variances for both main effects and interaction effects are also subjected to full Bayesian estimate, which is more optimal than two step approach involved in maximum-likelihood. A series of simulation experiments have been conducted to demonstrate the performance of the methods. The computer program written in FORTRAN language is freely available on request.
机译:与仅两个自交系的杂交相比,使用多个自交系的杂交数据来映射QTL可以提高QTL检测能力。尽管已经提出了许多固定效应模型方法来分析此类数据,但它们很大程度上基于一个QTL模型或主要效应模型,并且始终忽略QTL之间的交互效应。但是,有效地将交互作用与残留误差区分开可以提高统计功效。在本文中,我们都将新颖的贝叶斯模型选择方法和贝叶斯收缩估计方法扩展到了多个自交系杂交。通过两个扩展,可以高效地检测交互的QTL。此外,主效应和相互作用效应的后验方差也要经过完整的贝叶斯估计,这比最大似然法中涉及的两步法更为理想。已经进行了一系列的仿真实验以证明该方法的性能。可应要求免费提供用FORTRAN语言编写的计算机程序。

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