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首页> 外文期刊>Briefings in bioinformatics >Computational identification of mutator-derived lncRNA signatures of genome instability for improving the clinical outcome of cancers: a case study in breast cancer
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Computational identification of mutator-derived lncRNA signatures of genome instability for improving the clinical outcome of cancers: a case study in breast cancer

机译:基因组不稳定性的突变率衍生LncrNA签名的计算鉴定,提高癌症临床结果的临床结果:乳腺癌案例研究

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Emerging evidence revealed the critical roles of long non-coding RNAs (lncRNAs) in maintaining genomic instability. However, identification of genome instability-associated lncRNAs and their clinical significance in cancers remain largely unexplored. Here, we developed a mutator hypothesis-derived computational frame combining lncRNA expression profiles and somatic mutation profiles in a tumor genome and identified 128 novel genomic instability-associated lncRNAs in breast cancer as a case study.We then identified a genome instability-derived two lncRNA-based gene signature (GILncSig) that stratified patients into high- and low-risk groups with significantly different outcome and was further validated in multiple independent patient cohorts. Furthermore, the GILncSig correlated with genomic mutation rate in both ovarian cancer and breast cancer, indicating its potential as a measurement of the degree of genome instability. The GILncSig was able to divide TP53 wide-type patients into two risk groups, with the low-risk group showing significantly improved outcome and the high-risk group showing no significant difference compared with those with TP53 mutation. In summary, this study provided a critical approach and resource for further studies examining the role of lncRNAs in genome instability and introduced a potential new avenue for identifying genomic instability-associated cancer biomarkers.
机译:新兴的证据显示了长的非编码RNA(LNCRNA)在维持基因组不稳定性方面的临界作用。然而,鉴定基因组不稳定性相关的LNCRNA及其在癌症中的临床意义仍然很大程度上是未开发的。在这里,我们开发了一种突变假设衍生的计算框架,将LNCRNA表达谱和体细胞突变谱组合在肿瘤基因组中,并确定128个新型基因组不稳定相关的LNCRNA在乳腺癌中作为案例研究。然后鉴定了基因组不稳定性 - 衍生的两种LNCRNA基因签名(Gilncsig)将患者分解为高风险群体,具有显着不同的结果,并在多个独立患者队列中进一步验证。此外,Gilncsig与卵巢癌和乳腺癌中的基因组突变率相关,表明其潜在作为基因组不稳定程度的测量。 Gilncsig能够将TP53宽型患者分为两种风险群体,低风险组显示出明显改善的结果和高风险组显示与TP53突变相比没有显着差异。总之,本研究提供了一种批判性方法和资源,用于进一步研究检查LNCRNA在基因组不稳定性中的作用,并引入了识别基因组不稳定相关癌症生物标志物的潜在新途径。

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