A marker weighting approach for enhancing within-family accuracy in genomic prediction

Author:

Montesinos-López Osval A1,Crespo-Herrera Leonardo2ORCID,Xavier Alencar34,Godwa Manje2,Beyene Yoseph2,Pierre Carolina Saint2ORCID,de la Rosa-Santamaria Roberto5,Salinas-Ruiz Josafhat6,Gerard Guillermo2,Vitale Paolo2,Dreisigacker Susanne2ORCID,Lillemo Morten7,Grignola Fernando8,Sarinelli Martin8,Pozzo Ezequiel9,Quiroga Marco10,Montesinos-López Abelardo11,Crossa José212ORCID

Affiliation:

1. Facultad de Telemática, Universidad de Colima, Colima , Colima, 28040 , Mexico

2. International Maize and Wheat Improvement Center (CIMMYT) , Km 45 , Carretera México-Veracruz, CP 52640, Edo. de México, Mexico

3. Corteva Agrisciences , 8305 NW 62nd Ave , Johnston, IA 50131, USA

4. Purdue University , 915W State Street , West Lafayette, IN 47907, USA

5. Colegio de Postgraduados Campus , Tabasco, CP 86570 , Mexico

6. Colegio de Postgraduados Campus Córdoba, Carretera Federal Córdoba-Veracruz km 348 , Manuel León, Amatlán de los Reyes , Veracruz, CP 94953, Mexico

7. Department of Plant Science, Norwegian University of Life Sciences (NMBU) , P.O. Box 5003, 1433 As , Norway

8. GDM Seed , Gibson City, IL, 60936 , USA {C}%3C!%2D%2D%7BC%7D%253C!%252D%252D%257BC%257D%25253C!%25252D%25252D%25257C%25257CrmComment%25257C%25257C%25253C~show%252520%25255BAQ%252520ID%25253DAQ8%25255D~%25253E%25252D%25252D%25253E%252D%252D%253E%2D%2D%3E

9. GDM , Chacabuco, Buenos Aires, B6740WAC , Argentina

10. GDM , San Isidro, Buenos Aires, B1642GLA , Argentina {C}%3C!%2D%2D%7BC%7D%253C!%252D%252D%257BC%257D%25253C!%25252D%25252D%25257BC%25257D%2525253C!%2525252D%2525252D%2525257C%2525257CrmComment%2525257C%2525257C%2525253C~show%25252520%2525255BAQ%25252520ID%2525253DAQ10%2525255D~%2525253E%2525252D%2525252D%2525253E%25252D%25252D%25253E%252D%252D%253E%2D%2D%3E

11. Centro Universitario de Ciencias Exactas e Ingenierías (CUCEI), Universidad de Guadalajara , 44430, Guadalajara, Jalisco , Mexico

12. Colegio de Postgraduados , Montecillos, Edo. de México CP 56230 , Mexico {C}%3C!%2D%2D%7BC%7D%253C!%252D%252D%257BC%257D%25253C!%25252D%25252D%25257BC%25257D%2525253C!%2525252D%2525252D%2525257BC%2525257D%252525253C!%252525252D%252525252D%252525257C%252525257CrmComment%252525257C%252525257C%252525253C~show%2525252520%252525255BAQ%2525252520ID%252525253DAQ11%252525255D~%252525253E%252525252D%252525252D%252525253E%2525252D%2525252D%2525253E%25252D%25252D%25253E%252D%252D%253E%2D%2D%3E

Abstract

Abstract Genomic selection is revolutionizing plant breeding. However, its practical implementation is still very challenging, since predicted values do not necessarily have high correspondence to the observed phenotypic values. When the goal is to predict within-family, it is not always possible to obtain reasonable accuracies, which is of paramount importance to improve the selection process. For this reason, in this research, we propose the Adversaria-Boruta (AB) method, which combines the virtues of the adversarial validation (AV) method and the Boruta feature selection method. The AB method operates primarily by minimizing the disparity between training and testing distributions. This is accomplished by reducing the weight assigned to markers that display the most significant differences between the training and testing sets. Therefore, the AB method built a weighted genomic relationship matrix that is implemented with the genomic best linear unbiased predictor (GBLUP) model. The proposed AB method is compared using 12 real data sets with the GBLUP model that uses a nonweighted genomic relationship matrix. Our results show that the proposed AB method outperforms the GBLUP by 8.6, 19.7, and 9.8% in terms of Pearson’s correlation, mean square error, and normalized root mean square error, respectively. Our results support that the proposed AB method is a useful tool to improve the prediction accuracy of a complete family, however, we encourage other investigators to evaluate the AB method to increase the empirical evidence of its potential.

Funder

Bill & Melinda Gates Foundation

BMGF/FCDO

Accelerating Genetic Gains in Maize and Wheat for Improved Livelihoods

USAID

USAID-CIMMYT Wheat/AGGMW

AGG-Maize Supplementary Project

CIMMYT CRP

Foundation for Research Levy on Agricultural Products

Agricultural Agreement Research Fund

Research Council of Norway

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology

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