Genome-Wide Association Studies with a Genomic Relationship Matrix: A Case Study with Wheat and Arabidopsis

Author:

Gianola Daniel11234,Fariello Maria I56,Naya Hugo5,Schön Chris-Carolin47

Affiliation:

1. Department of Animal Sciences, University of Wisconsin-Madison, Wisconsin 53706

2. Department of Dairy Science, University of Wisconsin-Madison, Wisconsin 53706

3. Department of Biostatistics and Medical Informatics, University of Wisconsin-Madison, Wisconsin 53706

4. Technical University of Munich School of Life Sciences Weihenstephan, Technical University of Munich, D-85354 Freising, Germany

5. Bioinformatics Unit, Institut Pasteur de Montevideo, 11400, Uruguay

6. Instituto de Matemática y Estadística Rafael Laguardia, Facultad de Ingeniería, Universidad de la República, 11300 Montevideo, Uruguay

7. Institute for Advanced Study, Technical University of Munich, D-85748 Garching, Germany

Abstract

Abstract Standard genome-wide association studies (GWAS) scan for relationships between each of p molecular markers and a continuously distributed target trait. Typically, a marker-based matrix of genomic similarities among individuals (G) is constructed, to account more properly for the covariance structure in the linear regression model used. We show that the generalized least-squares estimator of the regression of phenotype on one or on m markers is invariant with respect to whether or not the marker(s) tested is(are) used for building G, provided variance components are unaffected by exclusion of such marker(s) from G. The result is arrived at by using a matrix expression such that one can find many inverses of genomic relationship, or of phenotypic covariance matrices, stemming from removing markers tested as fixed, but carrying out a single inversion. When eigenvectors of the genomic relationship matrix are used as regressors with fixed regression coefficients, e.g., to account for population stratification, their removal from G does matter. Removal of eigenvectors from G can have a noticeable effect on estimates of genomic and residual variances, so caution is needed. Concepts were illustrated using genomic data on 599 wheat inbred lines, with grain yield as target trait, and on close to 200 Arabidopsis thaliana accessions.

Publisher

Oxford University Press (OUP)

Subject

Genetics(clinical),Genetics,Molecular Biology

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