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基于通路的全基因组关联研究的一种新排列策略。

A new permutation strategy of pathway-based approach for genome-wide association study.

机构信息

1School of Biomedical Engineering, Southern Medical University, Guangzhou 510515, PR China.

出版信息

BMC Bioinformatics. 2009 Dec 18;10:429. doi: 10.1186/1471-2105-10-429.

Abstract

BACKGROUND

Recently introduced pathway-based approach is promising and advantageous to improve the efficiency of analyzing genome-wide association scan (GWAS) data to identify disease variants by jointly considering variants of the genes that belong to the same biological pathway. However, the current available pathway-based approaches for analyzing GWAS have limited power and efficiency.

RESULTS

We proposed a new and efficient permutation strategy based on SNP randomization for determining significance in pathway analysis of GWAS. The developed permutation strategy was evaluated and compared to two previously available methods, i.e. sample permutation and gene permutation, through simulation studies and a study on a real dataset. Results showed that the proposed permutation strategy is more powerful and efficient with greatly reducing the computational complexity.

CONCLUSION

Our findings indicate the improved performance of SNP permutation and thus render pathway-based analysis of GWAS more applicable and attractive.

摘要

背景

最近引入的基于通路的方法很有前途,也很有优势,它可以通过同时考虑属于同一生物通路的基因的变异,提高分析全基因组关联扫描(GWAS)数据以识别疾病变异的效率。然而,目前用于分析 GWAS 的基于通路的方法在功效和效率上都受到限制。

结果

我们提出了一种新的基于 SNP 随机化的高效置换策略,用于确定 GWAS 通路分析中的显著性。通过模拟研究和对真实数据集的研究,对开发的置换策略进行了评估,并与两种先前可用的方法(即样本置换和基因置换)进行了比较。结果表明,所提出的置换策略具有更高的功效和效率,大大降低了计算复杂度。

结论

我们的研究结果表明 SNP 置换的性能得到了改善,从而使基于通路的 GWAS 分析更具适用性和吸引力。

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