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Nonparametric Bayesian inference for perturbed and orthologous gene regulatory networks

机译:扰动和直系基因调控网络的非参数贝叶斯推断

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摘要

Motivation: The generation of time series transcriptomic datasets collected under multiple experimental conditions has proven to be a powerful approach for disentangling complex biological processes, allowing for the reverse engineering of gene regulatory networks (GRNs). Most methods for reverse engineering GRNs from multiple datasets assume that each of the time series were generated from networks with identical topology. In this study, we outline a hierarchical, non-parametric Bayesian approach for reverse engineering GRNs using multiple time series that can be applied in a number of novel situations including: (i) where different, but overlapping sets of transcription factors are expected to bind in the different experimental conditions; that is, where switching events could potentially arise under the different treatments and (ii) for inference in evolutionary related species in which orthologous GRNs exist. More generally, the method can be used to identify context-specific regulation by leveraging time series gene expression data alongside methods that can identify putative lists of transcription factors or transcription factor targets.
机译:动机:在多种实验条件下收集的时间序列转录组数据集已被证明是解开复杂生物过程的强大方法,可用于基因调控网络(GRN)的逆向工程。从多个数据集中对GRN进行逆向工程的大多数方法都假定每个时间序列都是从具有相同拓扑的网络生成的。在这项研究中,我们概述了使用多个时间序列进行逆向工程GRN的分层,非参数贝叶斯方法,该方法可以应用于许多新颖的情况,包括:(i)预期不同但重叠的转录因子集会结合在不同的实验条件下也就是说,在不同处理下可能会发生转换事件;(ii)可以推断出存在直系同源GRN的进化相关物种。更一般地,该方法可用于通过利用时间序列基因表达数据以及可识别假定的转录因子或转录因子靶标列表的方法来鉴定特定于情境的调节。

著录项

  • 来源
    《Bioinformatics》 |2012年第12期|p.233-241|共9页
  • 作者

    David L. Wild;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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