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Fast kernel-based association testing of non-linear genetic effects for biobank-scale data

Author

Listed:
  • Boyang Fu

    (UCLA)

  • Ali Pazokitoroudi

    (UCLA)

  • Mukund Sudarshan

    (Courant Institute of Mathematical Sciences, New York University)

  • Zhengtong Liu

    (UCLA)

  • Lakshminarayanan Subramanian

    (Courant Institute of Mathematical Sciences, New York University
    NYU Grossman School of Medicine)

  • Sriram Sankararaman

    (UCLA
    David Geffen School of Medicine, UCLA
    David Geffen School of Medicine, UCLA)

Abstract

Our knowledge of non-linear genetic effects on complex traits remains limited, in part, due to the modest power to detect such effects. While kernel-based tests offer a versatile approach to test for non-linear relationships between sets of genetic variants and traits, current approaches cannot be applied to Biobank-scale datasets containing hundreds of thousands of individuals. We propose, FastKAST, a kernel-based approach that can test for non-linear effects of a set of variants on a quantitative trait. FastKAST provides calibrated hypothesis tests while enabling analysis of Biobank-scale datasets with hundreds of thousands of unrelated individuals from a homogeneous population. We apply FastKAST to 53 quantitative traits measured across ≈ 300 K unrelated white British individuals in the UK Biobank to detect sets of variants with non-linear effects at genome-wide significance.

Suggested Citation

  • Boyang Fu & Ali Pazokitoroudi & Mukund Sudarshan & Zhengtong Liu & Lakshminarayanan Subramanian & Sriram Sankararaman, 2023. "Fast kernel-based association testing of non-linear genetic effects for biobank-scale data," Nature Communications, Nature, vol. 14(1), pages 1-8, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-40346-2
    DOI: 10.1038/s41467-023-40346-2
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