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Robust kernel association testing (RobKAT).

Kara Martinez1, Arnab Maity1, Robert H Yolken2

  • 1Department of Statistics, North Carolina State University, Raleigh, North Carolina.

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Summary
This summary is machine-generated.

We introduce RobKAT, a robust kernel association test for genetic data. RobKAT offers flexible loss functions and no distributional assumptions, outperforming existing methods like SKAT in various scenarios.

Keywords:
kernel association testmultimarker hypothesis testrobust regressionschizophreniasemiparametric

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Area of Science:

  • Genetics
  • Statistical genetics
  • Bioinformatics

Background:

  • Kernel machine methods, such as the Sequence Kernel Association Test (SKAT), are commonly used for testing single-nucleotide polymorphism (SNP) associations with responses.
  • Existing methods often rely on least-squares procedures, assuming normally distributed responses, which limits their applicability.
  • Robust methods like Quantile Regression Kernel Machine (QRKM) have limitations in loss function flexibility and inference scope.

Purpose of the Study:

  • To propose a general and robust kernel association test (RobKAT) that overcomes the limitations of existing methods.
  • To develop a test with a flexible choice of loss function and no distributional assumptions on the response.
  • To evaluate the performance of RobKAT through simulations and real-world data application.

Main Methods:

  • Developed RobKAT, a novel robust kernel association test.
  • Evaluated RobKAT's type I error control and power through simulations across various data distributions.
  • Applied RobKAT to analyze gene-environment associations in schizophrenia patients using data from the Clinical Antipsychotic Trials of Intervention Effectiveness (CATIE) study.

Main Results:

  • RobKAT controls type I error and shows comparable power to SKAT under normal error distributions.
  • In non-normal error distributions, RobKAT demonstrated similar or greater power than SKAT.
  • RobKAT identified significant associations with four SNP sets in the CATIE data, including three missed by SKAT.

Conclusions:

  • RobKAT provides a flexible and robust approach for genetic association testing, suitable for diverse data distributions.
  • The proposed method enhances the ability to detect genetic associations, particularly in complex datasets.
  • RobKAT offers a valuable alternative to existing methods, improving power and applicability in genetic association studies.