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Computational and experimental approaches for modeling gene regulatory networks.

机译:用于基因调控网络建模的计算和实验方法。

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摘要

To understand most cellular processes, one must understand how genetic information is processed. A formidable challenge is the dissection of gene regulatory networks to delineate how eukaryotic cells coordinate and govern patterns of gene expression that ultimately lead to a phenotype. In this paper, we review several approaches for modeling eukaryotic gene regulatory networks and for reverse engineering such networks from experimental observations. Since we are interested in elucidating the transcriptional regulatory mechanisms of colon cancer progression, we use this important biological problem to illustrate various aspects of modeling gene regulation. We discuss four important models: gene networks, transcriptional regulatory systems, Boolean networks, and dynamical Bayesian networks. We review state-of-the-art functional genomics techniques, such as gene expression profiling, cis-regulatory element identification, TF target gene identification, and gene silencing by RNA interference, which can be used to extract information about gene regulation. We can employ this information, in conjunction with appropriately designed reverse engineering algorithms, to construct a computational model of gene regulation that sufficiently predicts experimental observations. In the last part of this review, we focus on the problem of reverse engineering transcriptional regulatory networks by gene perturbations. We mathematically formulate this problem and discuss the role of experimental resolution in our ability to reconstruct accurate models of gene regulation. We conclude, by discussing a promising approach for inferring a transcriptional regulatory system from microarray data obtained by gene perturbations.
机译:要了解大多数细胞过程,必须了解如何处理遗传信息。严峻的挑战是解剖基因调控网络,以描绘真核细胞如何协调和控制最终导致表型的基因表达模式。在本文中,我们将从实验观察中综述了几种用于构建真核基因调控网络和进行反向工程的方法。由于我们有兴趣阐明结肠癌进展的转录调控机制,因此我们使用这一重要的生物学问题来说明建模基因调控的各个方面。我们讨论了四个重要的模型:基因网络,转录调控系统,布尔网络和动态贝叶斯网络。我们回顾了最新的功能基因组学技术,例如基因表达谱分析,顺式调控元件鉴定,TF靶基因鉴定和RNA干扰引起的基因沉默,这些技术可用于提取有关基因调控的信息。我们可以将这些信息与适当设计的逆向工程算法结合使用,以构建足以预测实验观察结果的基因调控计算模型。在这篇综述的最后一部分,我们将重点介绍通过基因扰动逆向工程转录调控网络的问题。我们用数学方法解决了这个问题,并讨论了实验分辨率在重建基因调控精确模型中的作用。通过讨论从基因扰动获得的微阵列数据推断转录调控系统的有前途的方法,我们得出结论。

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