4.5 Article

PERCH: A Unified Framework for Disease Gene Prioritization

期刊

HUMAN MUTATION
卷 38, 期 3, 页码 243-251

出版社

WILEY
DOI: 10.1002/humu.23158

关键词

variant interpretation; gene prioritization; whole-exome/whole-genome/gene-panel sequencing; functional consequence; co-segregation analysis; rare-variant burden test; gene association network; variants of unknown significance; genetic testing; de novo mutation

资金

  1. Medical Research Council [MC_PC_15018, G9815508] Funding Source: Medline
  2. NCI NIH HHS [R01 CA164944, R01 CA116167, U01 CA116167, R01 CA155767, R01 CA164138, R01 CA192393] Funding Source: Medline
  3. Wellcome Trust Funding Source: Medline
  4. Medical Research Council [MC_PC_15018] Funding Source: researchfish

向作者/读者索取更多资源

To interpret genetic variants discovered from next-generation sequencing, integration of heterogeneous information is vital for success. This article describes a framework named PERCH (Polymorphism Evaluation, Ranking, and Classification for a Heritable trait), available at http://BJFengLab.org/.. It can prioritize disease genes by quantitatively unifying a new deleteriousness measure called BayesDel, an improved assessment of the biological relevance of genes to the disease, a modified linkage analysis, a novel rare-variant association test, and a converted variant call quality score. It supports data that contain various combinations of extended pedigrees, trios, and case-controls, and allows for a reduced penetrance, an elevated phenocopy rate, liability classes, and covariates. BayesDel is more accurate than PolyPhen2, SIFT, FATHMM, LRT, Mutation Taster, Mutation Assessor, PhyloP, GERP++, SiPhy, CADD, MetaLR, and MetaSVM. The overall approach is faster and more powerful than the existing quantitative method pVAAST, as shown by the simulations of challenging situations in finding the missing heritability of a complex disease. This framework can also classify variants of unknown significance (variants of uncertain significance) by quantitatively integrating allele frequencies, deleteriousness, association, and co-segregation. PERCH is a versatile tool for gene prioritization in gene discovery research and variant classification in clinical genetic testing.

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