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CMDS: a population-based method for identifying recurrent DNA copy number aberrations in cancer from high-resolution data

机译:CMDS:一种基于人群的方法,可从高分辨率数据中识别癌症中的复发性DNA拷贝数异常

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摘要

Motivation: DNA copy number aberration (CNA) is a hallmark of genomic abnormality in tumor cells. Recurrent CNA (RCNA) occurs in multiple cancer samples across the same chromosomal region and has greater implication in tumorigenesis. Current commonly used methods for RCNA identification require CNA calling for individual samples before cross-sample analysis. This two-step strategy may result in a heavy computational burden, as well as a loss of the overall statistical power due to segmentation and discretization of individual sample's data. We propose a population-based approach for RCNA detection with no need of single-sample analysis, which is statistically powerful, computationally efficient and particularly suitable for high-resolution and large-population studies.
机译:动机:DNA拷贝数畸变(CNA)是肿瘤细胞中基因组异常的标志。复发性CNA(RCNA)发生在同一染色体区域的多个癌症样本中,在肿瘤发生中具有更大的意义。当前用于RCNA识别的常用方法要求CNA在进行交叉样本分析之前需要单个样本。这种两步策略可能会导致沉重的计算负担,并且由于对单个样本数据进行分割和离散化而导致总体统计能力的损失。我们提出了一种基于人群的RCNA检测方法,无需进行单样本分析,该方法具有强大的统计功能,计算效率高,特别适合于高分辨率和人口众多的研究。

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