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一种用于估计祖先基因组排列的贝叶斯方法。

A Bayesian approach to the estimation of ancestral genome arrangements.

作者信息

Larget Bret, Kadane Joseph B, Simon Donald L

机构信息

Department of Botany, University of Wisconsin, Madison, USA.

出版信息

Mol Phylogenet Evol. 2005 Aug;36(2):214-23. doi: 10.1016/j.ympev.2005.03.026.

Abstract

We describe a Bayesian approach to estimate phylogeny and ancestral genome arrangements on the basis of genome arrangement data using a model in which gene inversion is the sole mechanism of change. While we have described a similar method to estimate phylogenetic relationships in the statistics literature, the novel contribution of the present work is the description of a method to compute probability distributions of ancestral genome arrangements. We assess the robustness of posterior distributions to different specifications of prior distributions and provide an empirical means to selecting a prior distribution. We note that parsimony approaches to ancestral reconstruction in the literature focus on the development of computationally efficient algorithms for searching for optimal ancestral genome arrangements, but, unlike Bayesian approaches, do not include assessment of uncertainty in these estimates. We compare and contrast a Bayesian approach with a parsimony approach to infer phylogenies and ancestral arrangements from genome arrangement data by re-analyzing a number of previously published data sets.

摘要

我们描述了一种贝叶斯方法,该方法基于基因组排列数据,利用基因倒位作为唯一变化机制的模型来估计系统发育和祖先基因组排列。虽然我们在统计学文献中描述过一种类似的估计系统发育关系的方法,但本研究的新贡献在于描述了一种计算祖先基因组排列概率分布的方法。我们评估了后验分布对不同先验分布规范的稳健性,并提供了一种选择先验分布的实证方法。我们注意到,文献中用于祖先重建的简约方法侧重于开发计算效率高的算法来搜索最优祖先基因组排列,但与贝叶斯方法不同,这些方法不包括对这些估计中的不确定性的评估。我们通过重新分析一些先前发表的数据集,比较并对比了贝叶斯方法和简约方法,以从基因组排列数据推断系统发育和祖先排列。

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