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Matrix eQTL: ultra fast eQTL analysis via large matrix operations

机译:Matrix eQTL:通过大型矩阵操作进行超快速的eQTL分析

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摘要

>Motivation: Expression quantitative trait loci (eQTL) analysis links variations in gene expression levels to genotypes. For modern datasets, eQTL analysis is a computationally intensive task as it involves testing for association of billions of transcript-SNP (single-nucleotide polymorphism) pair. The heavy computational burden makes eQTL analysis less popular and sometimes forces analysts to restrict their attention to just a small subset of transcript-SNP pairs. As more transcripts and SNPs get interrogated over a growing number of samples, the demand for faster tools for eQTL analysis grows stronger.>Results: We have developed a new software for computationally efficient eQTL analysis called Matrix eQTL. In tests on large datasets, it was 2–3 orders of magnitude faster than existing popular tools for QTL/eQTL analysis, while finding the same eQTLs. The fast performance is achieved by special preprocessing and expressing the most computationally intensive part of the algorithm in terms of large matrix operations. Matrix eQTL supports additive linear and ANOVA models with covariates, including models with correlated and heteroskedastic errors. The issue of multiple testing is addressed by calculating false discovery rate; this can be done separately for cis- and trans-eQTLs.>Availability: Matlab and R implementations are available for free at >Contact:
机译:>动机:表达定量性状基因座(eQTL)分析将基因表达水平的变异与基因型联系起来。对于现代数据集,eQTL分析是一项计算密集型任务,因为它涉及测试数十亿个转录本-SNP(单核苷酸多态性)对的关联。繁重的计算负担使eQTL分析不那么受欢迎,有时会迫使分析师将注意力集中在转录SNP对的一小部分上。随着越来越多的样本对越来越多的转录本和SNP进行询问,对eQTL分析更快的工具的需求也越来越强。>结果:我们已经开发了一种用于计算有效eQTL分析的新软件,称为Matrix eQTL。在大型数据集上进行的测试中,找到相同的eQTL时,它比现有的流行的QTL / eQTL分析工具快了2-3个数量级。快速性能是通过特殊的预处理并通过大型矩阵运算来表示算法中计算量最大的部分而实现的。 Matrix eQTL支持具有协变量的加法线性和ANOVA模型,包括具有相关误差和异方差的模型。通过计算错误发现率可以解决多次测试的问题。 >可用性: Matlab和R实现可在> Contact:免费获得。

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