Genome prediction accuracy of common bean via Bayesian models

Author:

Barili Leiri Daiane1,Vale Naine Martins do2,Silva Fabyano Fonseca e1ORCID,Carneiro José Eustáquio de Souza1,Oliveira Hinayah Rojas de1,Vianello Rosana Pereira3,Valdisser Paula Arielle Mendes Ribeiro3,Nascimento Moyses1

Affiliation:

1. Universidade Federal de Viçosa (UFV), Brazil

2. Coodetec, Desenvolvimento Produção e Comercialização Agrícola LTDA, Brasil

3. Embrapa Arroz e Feijão, Brazil

Abstract

ABSTRACT: We aimed to apply genomic information based on SNP (single nucleotide polymorphism) markers for the genetic evaluation of the traits “stay-green” (SG), plant architecture (PA), grain aspect (GA) and grain yield (GY) in common bean through Bayesian models. These models were compared in terms of prediction accuracy and ability for heritability estimation for each one of the mentioned traits. A total of 80 cultivars were genotyped for 377 SNP markers, whose effects were estimated by five different Bayesian models: Bayes A (BA), B (BB), C (BC), LASSO (BL) e Ridge regression (BRR). Although, prediction accuracies calculated by means of cross-validation have been similar within each trait, the BB model stood out for the trait SG, whereas the BRR was indicated for the remaining traits. The heritability estimates for the traits SG, PA, GA and GY were 0.61, 0.28, 0.32 and 0.29, respectively. In summary, the Bayesian methods applied here were effective and ease to be implemented. The used SNP markers can help in the early selection of promising genotypes, since incorporating genomic information increase the prediction accuracy of the estimated genetic merit.

Publisher

FapUNIFESP (SciELO)

Subject

General Veterinary,Agronomy and Crop Science,Animal Science and Zoology

Reference19 articles.

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