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基于相邻成对共表达的概率路径排序用于代谢转录本分析。

Probabilistic path ranking based on adjacent pairwise coexpression for metabolic transcripts analysis.

作者信息

Takigawa Ichigaku, Mamitsuka Hiroshi

机构信息

Bioinformatics Center, Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.

出版信息

Bioinformatics. 2008 Jan 15;24(2):250-7. doi: 10.1093/bioinformatics/btm575. Epub 2007 Nov 24.

Abstract

MOTIVATION

Pathway knowledge in public databases enables us to examine how individual metabolites are connected via chemical reactions and what genes are implicated in those processes. For two given (sets of) compounds, the number of possible paths between them in a metabolic network can be intractably large. It would be informative to rank these paths in order to differentiate between them.

RESULTS

Focusing on adjacent pairwise coexpression, we developed an algorithm which, for a specified k, efficiently outputs the top k paths based on a probabilistic scoring mechanism, using a given metabolic network and microarray datasets. Our idea of using adjacent pairwise coexpression is supported by recent studies that local coregulation is predominant in metabolism. We first evaluated this idea by examining to what extent highly correlated gene pairs are adjacent and how often they are consecutive in a metabolic network. We then applied our algorithm to two examples of path ranking: the paths from glucose to pyruvate in the entire metabolic network of yeast and the paths from phenylalanine to sinapyl alcohol in monolignols pathways of arabidopsis under several different microarray conditions, to confirm and discuss the performance analysis of our method.

摘要

动机

公共数据库中的通路知识使我们能够研究单个代谢物是如何通过化学反应相互连接的,以及哪些基因参与了这些过程。对于给定的两种(组)化合物,它们在代谢网络中的可能路径数量可能大得难以处理。对这些路径进行排序以便区分它们将是很有意义的。

结果

专注于相邻成对共表达,我们开发了一种算法,对于指定的k,该算法使用给定的代谢网络和微阵列数据集,基于概率评分机制有效地输出前k条路径。我们使用相邻成对共表达的想法得到了最近研究的支持,这些研究表明局部共调控在代谢中占主导地位。我们首先通过检查高度相关的基因对在代谢网络中相邻的程度以及它们连续出现的频率来评估这个想法。然后,我们将我们的算法应用于两个路径排序示例:酵母整个代谢网络中从葡萄糖到丙酮酸的路径,以及在几种不同微阵列条件下拟南芥单木质醇途径中从苯丙氨酸到芥子醇的路径,以确认并讨论我们方法的性能分析。

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