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Finding differentially expressed regions of arbitrary length in quantitative genomic data based on marked point process model

机译:基于标记点过程模型的定量基因组数据中发现任意长度的差异表达区域

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摘要

>Motivation: High-throughput nucleotide sequencing technologies provide large amounts of quantitative genomic data at nucleotide resolution, which are important for the present and future biomedical researches; for example differential analysis of base-level RNA expression data will improve our understanding of transcriptome, including both coding and non-coding genes. However, most studies of these data have relied on existing genome annotations and thus are limited to the analysis of known transcripts.>Results: In this article, we propose a novel method based on a marked point process model to find differentially expressed genomic regions of arbitrary length without using genome annotations. The presented method conducts a statistical test for differential analysis in regions of various lengths at each nucleotide and searches the optimal configuration of the regions by using a Monte Carlo simulation. We applied the proposed method to both synthetic and real genomic data, and their results demonstrate the effectiveness of our method.>Availability: The program used in this study is available at .>Contact:
机译:>动机:高通量核苷酸测序技术以核苷酸分辨率提供了大量的定量基因组数据,这对于当前和未来的生物医学研究都很重要;例如,对基本水平RNA表达数据的差异分析将改善我们对转录组的理解,包括编码和非编码基因。但是,对这些数据的大多数研究都依赖于现有的基因组注释,因此仅限于已知转录本的分析。>结果:在本文中,我们提出了一种基于标记点过程模型的新颖方法来在不使用基因组注释的情况下找到任意长度的差异表达基因组区域。提出的方法对每个核苷酸长度不同的区域进行差异分析的统计测试,并使用蒙特卡洛模拟方法搜索区域的最佳构型。我们将拟议的方法应用于合成基因组数据和实际基因组数据,其结果证明了该方法的有效性。>可用性:本研究中使用的程序可在。>联系人:

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