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GenoSNP: a variational Bayes within-sample SNP genotyping algorithm that does not require a reference population

机译:GenoSNP:不需要参考种群的变体贝叶斯样本内SNP基因分型算法

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摘要

Summary: Current genotyping algorithms typically call genotypes by clustering allele-specific intensity data on a single nucleotide polymorphism (SNP) by SNP basis. This approach assumes the availability of a large number of control samples that have been sampled on the same array and platform. We have developed a SNP genotyping algorithm for the Illumina Infinium SNP genotyping assay that is entirely within-sample and does not require the need for a population of control samples nor parameters derived from such a population. Our algorithm exhibits high concordance with current methods and >99% call accuracy on HapMap samples. The ability to call genotypes using only within-sample information makes the method computationally light and practical for studies involving small sample sizes and provides a valuable independent quality control metric for other population-based approaches.
机译:简介:当前的基因分型算法通常通过在SNP的基础上将等位基因特异性强度数据聚类在单核苷酸多态性(SNP)上来调用基因型。该方法假设已经在同一阵列和平台上采样了大量对照样品。我们已经为Illumina Infinium SNP基因分型测定法开发了一种SNP基因分型算法,该算法完全在样品内,不需要对照样品的群体,也不需要从该群体衍生的参数。我们的算法与HapMap样本的当前方法显示出高度一致性,并且调用准确率> 99%。仅使用样本内信息调用基因型的能力使该方法在计算上轻巧实用,适用于涉及小样本量的研究,并为其他基于人群的方法提供了宝贵的独立质量控制指标。

著录项

  • 来源
    《Bioinformatics》 |2008年第19期|2209-2214|共6页
  • 作者单位

    Department of Statistics University of Oxford 1 South Parks Road Oxford OX1 3TG;

    Life Sciences Interface Doctoral Training Centre University of Oxford Wolfson Building Parks Road Oxford OX1 3QD;

    Genomics Group Wellcome Trust Centre for Human Genetics Oxford OX3 7BN and;

    MRC Mammalian Genetics Unit MRC Harwell Harwell OX11 0RD UK;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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