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Abstract
Both trio and population designs are popular study designs for identifying risk genetic variants in genome-wide association studies (GWASs). The trio design, as a family-based design, is robust to confounding due to population structure, whereas the population design is often more powerful due to larger sample sizes. Here, we propose KnockoffHybrid, a knockoff-based statistical method for hybrid analysis of both the trio and population designs. KnockoffHybrid provides a unified framework that brings together the advantages of both designs and produces powerful hybrid analysis while controlling the false discovery rate (FDR) in the presence of linkage disequilibrium and population structure. Furthermore, KnockoffHybrid has the flexibility to leverage different types of summary statistics for hybrid analyses, including expression quantitative trait loci (eQTL) and GWAS summary statistics. We demonstrate in simulations that KnockoffHybrid offers power gains over non-hybrid methods for the trio and population designs with the same number of cases while controlling the FDR with complex correlation among variants and population structure among subjects. In hybrid analyses of three trio cohorts for autism spectrum disorders (ASDs) from the Autism Speaks MSSNG, Autism Sequencing Consortium, and Autism Genome Project with GWAS summary statistics from the iPSYCH project and eQTL summary statistics from the MetaBrain project, KnockoffHybrid outperforms conventional methods by replicating several known risk genes for ASDs and identifying additional associations with variants in other genes, including the PRAME family genes involved in axon guidance and which may act as common targets for human speech/language evolution and related disorders.
© 2024 American Society of Human Genetics.
© 2024 American Society of Human Genetics.
| Original language | English |
|---|---|
| Pages (from-to) | 1448-1461 |
| Number of pages | 14 |
| Journal | American Journal of Human Genetics |
| Volume | 111 |
| Issue number | 7 |
| Online published | 30 May 2024 |
| DOIs | |
| Publication status | Published - 11 Jul 2024 |
Funding
This research was supported by the Research Grants Council of Hong Kong Early Career Scheme 21303323 (to Y.Y.), the City University of Hong Kong Startup Grant 7200744 (to Y.Y.), and the NIH/National Institute of Mental Health Awards MH106910 and MH095797 (to I.I.-L.).
Research Keywords
- GWAS
- TWAS
- EQTL
- statistical genetics
- knockoff statistics
- autism
- hybrid analysis
- population admixture
- population design
- family-based design
RGC Funding Information
- RGC-funded
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ECS: Statistical Methods for Variable Selection with False Discovery Rate Control and Applications to Human Genetic Data
YANG, Y. (Principal Investigator / Project Coordinator)
1/01/24 → …
Project: Research
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