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DriverNet: uncovering the impact of somatic driver mutations on transcriptional networks in cancer

机译:DriverNet:发现体细胞驱动突变对癌症转录网络的影响

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Simultaneous interrogation of tumor genomes and transcriptomes is underway in unprecedented global efforts. Yet, despite the essential need to separate driver mutations modulating gene expression networks from transcriptionally inert passenger mutations, robust computational methods to ascertain the impact of individual mutations on transcriptional networks are underdeveloped. We introduce a novel computational framework, DriverNet, to identify likely driver mutations by virtue of their effect on mRNA expression networks. Application to four cancer datasets reveals the prevalence of rare candidate driver mutations associated with disrupted transcriptional networks and a simultaneous modulation of oncogenic and metabolic networks, induced by copy number co-modification of adjacent oncogenic and metabolic drivers. DriverNet is available on Bioconductor or at?http://compbio.bccrc.ca/software/drivernet/.
机译:在前所未有的全球努力中,正在进行肿瘤基因组和转录组的同时审讯。然而,尽管本质上需要将调节基因表达网络的驱动程序突变与转录惰性乘客突变区分开,但是确定单个突变对转录网络影响的鲁棒计算方法仍未得到开发。我们引入了一种新颖的计算框架DriverNet,以通过其对mRNA表达网络的影响来识别可能的驱动程序突变。对四个癌症数据集的应用揭示了与相邻的致癌和代谢驱动因子的拷贝数共修饰诱导的,与转录网络中断以及致癌和代谢网络同时调节相关的罕见候选驱动因子突变的普遍性。可在Bioconductor或http://compbio.bccrc.ca/software/drivernet/上获得DriverNet。

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