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生物多样性的结构分析。

Structural analysis of biodiversity.

机构信息

Laboratory of Applied Mathematics, Mount Sinai School of Medicine, New York, New York, United States of America.

出版信息

PLoS One. 2010 Feb 24;5(2):e9266. doi: 10.1371/journal.pone.0009266.

Abstract

Large, recently-available genomic databases cover a wide range of life forms, suggesting opportunity for insights into genetic structure of biodiversity. In this study we refine our recently-described technique using indicator vectors to analyze and visualize nucleotide sequences. The indicator vector approach generates correlation matrices, dubbed Klee diagrams, which represent a novel way of assembling and viewing large genomic datasets. To explore its potential utility, here we apply the improved algorithm to a collection of almost 17,000 DNA barcode sequences covering 12 widely-separated animal taxa, demonstrating that indicator vectors for classification gave correct assignment in all 11,000 test cases. Indicator vector analysis revealed discontinuities corresponding to species- and higher-level taxonomic divisions, suggesting an efficient approach to classification of organisms from poorly-studied groups. As compared to standard distance metrics, indicator vectors preserve diagnostic character probabilities, enable automated classification of test sequences, and generate high-information density single-page displays. These results support application of indicator vectors for comparative analysis of large nucleotide data sets and raise prospect of gaining insight into broad-scale patterns in the genetic structure of biodiversity.

摘要

大型、现有的基因组数据库涵盖了广泛的生命形式,为深入了解生物多样性的遗传结构提供了机会。在这项研究中,我们使用指标向量来分析和可视化核苷酸序列,改进了我们最近描述的技术。指标向量方法生成相关矩阵,称为克莱因图,这代表了一种组装和查看大型基因组数据集的新方法。为了探索其潜在的应用,我们将改进的算法应用于涵盖 12 个广泛分离的动物类群的近 17000 个 DNA 条形码序列的集合,证明分类指标向量在所有 11000 个测试案例中都给出了正确的分配。指标向量分析揭示了与物种和更高分类单元划分相对应的不连续性,这表明对于来自研究较少的群体的生物进行分类是一种有效的方法。与标准距离度量相比,指标向量保留了诊断字符的概率,能够自动对测试序列进行分类,并生成高信息量的单页显示。这些结果支持了指标向量在比较大型核苷酸数据集方面的应用,并为深入了解生物多样性遗传结构的广泛模式提供了前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/afc3/2827552/f727a826ceb3/pone.0009266.g001.jpg

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