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A Computational Method to Predict DNA Copy Number Alterations from Gene Expression Data in Tumor Cases

机译:预测肿瘤病例中基因表达数据的DNA拷贝数改变的计算方法

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Genetic alterations, such as chromosomal gains and losses, are key causes of tumorigenesis. Comparative Genomic Hybridization (CGH) is a molecular method for detecting such DNA copy number alterations in tumor cells. Recent observations have reported that in many tumors, the mRNA transcript changes measured by gene expression profiling (GEP) are correlated with corresponding DNA copy number alterations, supporting the possibility of predicting DNA copy number alterations from GEP data. In this paper, contrary to the traditional use of GEP, we present a new analytical approach utilizing GEP data for predicting DNA copy number alterations. The proposed approach is built on a hidden Markov model and trained in the light of paired GEP and CGH data on a sufficient number of tumor cases of the same tumor type. Then it can be applied to new cases of that tumor type to predict the CGH profiles from their GEP profiles.
机译:遗传改变,例如染色体增益和损失,是肿瘤发生的关键原因。对比基因组杂交(CGH)是用于检测肿瘤细胞中这种DNA拷贝数改变的分子方法。最近的观察结果报道,在许多肿瘤中,通过基因表达分析(GEP)测量的mRNA转录物变化与相应的DNA拷贝数改变相关,支持预测来自GEP数据的DNA拷贝数改变的可能性。在本文中,与传统使用GEP的使用相反,我们提出了一种利用GEP数据来预测DNA拷贝数改变的新分析方法。所提出的方法建立在隐藏的马尔可夫模型上,并根据相同肿瘤类型的足够数量的肿瘤病例的配对GEP和CGH数据训练。然后可以应用于肿瘤类型的新病例,以预测来自其GEP型材的CGH谱。

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