Prediction of Phenotype Information from Genotype Data

N. Yosef, J. Gramm, Qian-Fei Wang, William Stafford Noble, R. Karp, R. Sharan
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引用次数: 9

Abstract

The dissection of complex diseases is one of the greatest challenges of human genetics with important clinical and scientific applications. Traditionally, associations were sought between single genetic markers and disease. The availability of large scale SNP data makes it possible, for the first time, to study the predictive power of genotypes and haplotypes with respect to phenotype data. Here we present a novel method for predicting phenotype information from genotype data. The method is based on a support vector machine that employs new kernel functions for the similarity between genotypes or their underlying haplotypes. We demonstrate our approach on SNP data for the apolipoprotein gene cluster in baboons, predicting plasma lipid levels with significant success rates, and identifying associations that were not detected using extant approaches.
利用基因型数据预测表型信息
复杂疾病的解剖是人类遗传学面临的最大挑战之一,具有重要的临床和科学应用。传统上,人们一直在寻找单一遗传标记与疾病之间的联系。大规模SNP数据的可用性使得首次研究基因型和单倍型相对于表型数据的预测能力成为可能。在这里,我们提出了一种从基因型数据预测表型信息的新方法。该方法基于支持向量机,该支持向量机采用新的核函数来确定基因型或其潜在单倍型之间的相似性。我们在狒狒载脂蛋白基因簇的SNP数据上展示了我们的方法,以显着的成功率预测血浆脂质水平,并确定了使用现有方法未检测到的关联。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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