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Data- and knowledge-based modeling of gene regulatory networks: an update

机译:基因调控网络的基于数据和知识的建模:更新

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摘要

Gene regulatory network inference is a systems biology approach which predicts interactions between genes with the help of high-throughput data. In this review, we present current and updated network inference methods focusing on novel techniques for data acquisition, network inference assessment, network inference for interacting species and the integration of prior knowledge. After the advance of Next-Generation-Sequencing of cDNAs derived from RNA samples (RNA-Seq) we discuss in detail its application to network inference. Furthermore, we present progress for large-scale or even full-genomic network inference as well as for small-scale condensed network inference and review advances in the evaluation of network inference methods by crowdsourcing. Finally, we reflect the current availability of data and prior knowledge sources and give an outlook for the inference of gene regulatory networks that reflect interacting species, in particular pathogen-host interactions.
机译:基因调控网络推论是一种系统生物学方法,可借助高通量数据预测基因之间的相互作用。在这篇综述中,我们介绍了当前和更新的网络推理方法,这些方法侧重于数据采集,网络推理评估,相互作用物种的网络推理和先验知识整合的新技术。在从RNA样品衍生的cDNA的下一代测序(RNA-Seq)取得进展之后,我们将详细讨论其在网络推理中的应用。此外,我们介绍了大规模甚至全基因组网络推理以及小型浓缩网络推理的进展,并回顾了通过众包进行网络推理方法评估的进展。最后,我们反映了数据和现有知识来源的当前可用性,并对推断反映相互作用物种特别是病原体与宿主相互作用的基因调控网络的前景给出了展望。

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