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Computational method for inferring elements of gene regulatory network from temporal patterns of gene expression

机译:从基因表达的时间模式推断基因调控网络要素的计算方法

摘要

A computational method designed to extract information about gene regulatory network from raw gene expression data sets that are comprised of a time course of expression levels is disclosed. At a first step in this method, genes with similar temporal expression profiles are clustered into modules characterizing by distinct expression signatures. These fundamental patterns of gene expression are analyzed using the assumption that temporal profiles are shaped by interactions between genes belonging to different modules. The underlying genetic connectivity is retrieved using an optimization procedure developed in computational neurobiology for extracting information about neural circuitry. The objective is to find an optimal regulatory structure making calculated temporal patterns as close as possible to experimental data. A set of algorithms was used to evaluate statistical significance of putative regulatory connections derived from gene expression patterns. The method was utilized to identify regulatory subnetworks underlying the response of yeast cells to treatment with acid and alkaline conditions. Expression profiles of about 1600 genes that showed a significant change in expression during a time course were analyzed according to the method of the invention. The genes were clustered into 39 distinct modules and statistically significant connections between 16 modules representing most variable genes were identified and mapped to a sub-network of known connections. The results demonstrate that the computational method may be a useful tool both in elucidating of crucial elements of genetic network structure and in predicting novel regulatory connections based on gene expression.
机译:公开了一种设计用于从包括表达水平的时间进程的原始基因表达数据集中提取有关基因调控网络信息的计算方法。在该方法的第一步,将具有类似时间表达谱的基因聚类为通过不同表达特征表征的模块。使用以下假设来分析基因表达的这些基本模式:时间分布是由属于不同模块的基因之间的相互作用所塑造的。使用在计算神经生物学中开发的用于提取有关神经回路信息的优化程序来检索基本的遗传连通性。目的是找到一种最佳的调节结构,使计算出的时间模式尽可能接近实验数据。使用一组算法来评估从基因表达模式推导的假定调控连接的统计学意义。该方法被用来识别潜在的酵母细胞对酸和碱条件的反应的调节子网络。根据本发明的方法分析了约1600个基因的表达谱,所述表达谱在时间过程中表现出显着的变化。这些基因被聚集成39个不同的模块,代表最多可变基因的16个模块之间的统计上显着的联系被确定,并映射到已知连接的子网络中。结果表明,该计算方法在阐明遗传网络结构的关键要素和预测基于基因表达的新型调控连接方面均可能是有用的工具。

著录项

  • 公开/公告号US2003036071A1

    专利类型

  • 公开/公告日2003-02-20

    原文格式PDF

  • 申请/专利权人 LUKASHIN ALEX;

    申请/专利号US20020140556

  • 发明设计人 ALEX LUKASHIN;

    申请日2002-05-07

  • 分类号C12Q1/68;G06F19/00;G01N33/48;G01N33/50;

  • 国家 US

  • 入库时间 2022-08-22 00:10:15

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