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Waved aCGH: to smooth or not to smooth

机译:波动aCGH:平滑或不平滑

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摘要

Array-based comparative genomic hybridization (aCGH) is a powerful tool to detect genomic imbalances in the human genome. The analysis of aCGH data sets has revealed the existence of a widespread technical artifact termed as ‘waves’, characterized by an undulating data profile along the chromosome. Here, we describe the development of a novel noise-reduction algorithm, waves aCGH correction algorithm (WACA), based on GC content and fragment size correction. WACA efficiently removes the wave artifact, thereby greatly improving the accuracy of aCGH data analysis. We describe the application of WACA to both real and simulated aCGH data sets, and demonstrate that our algorithm, by systematically correcting for all known sources of bias, is a significant improvement on existing aCGH noise reduction algorithms. WACA and associated files are freely available as .
机译:基于阵列的比较基因组杂交(aCGH)是检测人类基因组中基因组失衡的强大工具。对aCGH数据集的分析显示,存在着一种广泛的技术伪像,称为“波浪”,其特征是沿着染色体的数据轮廓呈波浪形。在这里,我们描述了一种基于GC含量和片段大小校正的新型降噪算法Waves CGH校正算法(WACA)的开发。 WACA有效地去除了波形伪影,从而大大提高了aCGH数据分析的准确性。我们描述了WACA在实际aCGH数据集和模拟aCGH数据集上的应用,并证明了我们的算法通过系统地校正所有已知的偏差源,是对现有aCGH降噪算法的重大改进。 WACA和相关文件可免费获得。

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