Multi-omics data integration analysis identifies the spliceosome as a key regulator of DNA double-strand break repair

IF 3.4 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY NAR cancer Pub Date : 2022-04-08 DOI:10.1093/narcan/zcac013
Dana Sherill-Rofe, O. Raban, Steven Findlay, Dolev Rahat, Irene Unterman, Arash Samiei, A. Yasmeen, Zafir Kaiser, H. Kuasne, Morag Park, W. Foulkes, Idit Bloch, A. Zick, W. Gotlieb, Y. Tabach, Alexandre Orthwein
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引用次数: 4

Abstract

Abstract DNA repair by homologous recombination (HR) is critical for the maintenance of genome stability. Germline and somatic mutations in HR genes have been associated with an increased risk of developing breast (BC) and ovarian cancers (OvC). However, the extent of factors and pathways that are functionally linked to HR with clinical relevance for BC and OvC remains unclear. To gain a broader understanding of this pathway, we used multi-omics datasets coupled with machine learning to identify genes that are associated with HR and to predict their sub-function. Specifically, we integrated our phylogenetic-based co-evolution approach (CladePP) with 23 distinct genetic and proteomic screens that monitored, directly or indirectly, DNA repair by HR. This omics data integration analysis yielded a new database (HRbase) that contains a list of 464 predictions, including 76 gold standard HR genes. Interestingly, the spliceosome machinery emerged as one major pathway with significant cross-platform interactions with the HR pathway. We functionally validated 6 spliceosome factors, including the RNA helicase SNRNP200 and its co-factor SNW1. Importantly, their RNA expression correlated with BC/OvC patient outcome. Altogether, we identified novel clinically relevant DNA repair factors and delineated their specific sub-function by machine learning. Our results, supported by evolutionary and multi-omics analyses, suggest that the spliceosome machinery plays an important role during the repair of DNA double-strand breaks (DSBs).
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多组学数据整合分析确定剪接体是DNA双链断裂修复的关键调节因子
摘要DNA同源重组修复是维持基因组稳定性的重要手段。HR基因的生殖系和体细胞突变与乳腺癌(BC)和卵巢癌(OvC)的风险增加有关。然而,功能上与HR相关的因素和途径与BC和OvC的临床相关性的程度仍不清楚。为了更广泛地了解这一途径,我们使用多组学数据集结合机器学习来识别与HR相关的基因并预测其子功能。具体来说,我们将基于系统发育的共同进化方法(clap德普)与23种不同的遗传和蛋白质组学筛选相结合,直接或间接地监测HR的DNA修复。组学数据整合分析产生了一个新的数据库(HRbase),其中包含464个预测列表,其中包括76个金标准HR基因。有趣的是,剪接体机制成为与HR通路具有显著跨平台相互作用的主要途径。我们对6个剪接体因子进行了功能验证,包括RNA解旋酶SNRNP200及其辅助因子SNW1。重要的是,它们的RNA表达与BC/OvC患者的预后相关。总之,我们确定了新的临床相关的DNA修复因子,并通过机器学习描述了它们的特定子功能。我们的研究结果得到了进化和多组学分析的支持,表明剪接体机制在DNA双链断裂(DSBs)修复过程中起着重要作用。
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来源期刊
CiteScore
6.90
自引率
0.00%
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0
审稿时长
13 weeks
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Correction to 'Ku-DNA binding inhibitors modulate the DNA damage response in response to DNA double-strand breaks'. CytoCellDB: a comprehensive resource for exploring extrachromosomal DNA in cancer cell lines. DNA abasic sites act as rational therapeutic targets to synergize temozolomide response in both MMR-proficient and deficient cancer. High-level tumour methylation of BRCA1 and RAD51C is required for homologous recombination deficiency in solid cancers. Decoding ribosome complexity: role of ribosomal proteins in cancer and disease.
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