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Systematic assessment of imputation performance using the 1000 Genomes reference panels

  • Qian Liu
  • , Elizabeth T. Cirulli
  • , Yujun Han
  • , Song Yao
  • , Song Liu
  • , Qianqian Zhu
  • Roswell Park Cancer Institute
  • Duke University

Research output: Contribution to journalArticlepeer-review

20 Scopus citations

Abstract

Genotype imputation has been widely adopted in the postgenome-wide association studies (GWAS) era.Owing to its ability to accurately predict the genotypes of untyped variants, imputation greatly boosts variant density, allowing fine-mapping studies of GWAS loci and large-scale meta-analysis across different genotyping arrays. By leveraging genotype data from 90 whole-genome deeply sequenced individuals as the evaluation benchmark and the 1000 Genomes Project data as reference panels, we systematically examined four important issues related to genotype imputation practice. First, in a study of imputation accuracy, we found that IMPUTE2 and minimac have the best imputation performance among the three popular imputing software evaluated and that using a multipopulation reference panel is beneficial. Second, the optimal imputation quality cutoff for removing poorly imputed variants varies according to the software used. Third, the major contributing factors to consistently poor imputation are low variant heterozygosity, high sequence similarity to other genomic regions, high GC content, segmental duplication and being far from genotyping markers. Lastly, in an evaluation of the imputability of all known GWAS regions, we found that GWAS loci associated with hematological measurements and immune system diseases are harder to impute, as compared with other human traits. Recommendations made based on the above findings may provide practical guidance for imputation exercise in future genetic studies.

Original languageEnglish
Pages (from-to)549-562
Number of pages14
JournalBriefings in Bioinformatics
Volume16
Issue number4
DOIs
StatePublished - Jul 10 2014

Keywords

  • Genetic association
  • Genotype estimation
  • Haplotyping

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