Genomic prediction of hybrid performance for agronomic traits in sorghum

Author:

Sapkota Sirjan1ORCID,Boatwright Jon Lucas12ORCID,Kumar Neeraj12ORCID,Myers Matthew1,Cox Alex1,Ackerman Arlyn23,Caughman William3,Brenton Zachary W4ORCID,Boyles Richard E23ORCID,Kresovich Stephen12

Affiliation:

1. Advanced Plant Technology Program, Clemson University , Clemson, SC 29634 , USA

2. Department of Plant and Environmental Sciences, Clemson University , Clemson, SC 29634 , USA

3. Pee Dee Research and Education Center, Clemson University , Florence, SC 29506 , USA

4. Carolina Seed Systems, Inc. , Florence, SC 29506 , USA

Abstract

Abstract Hybrid breeding in sorghum [Sorghum bicolor (L.) Moench] utilizes the cytoplasmic-nuclear male sterility (CMS) system for seed production and subsequently harnesses heterosis. Since the cost of developing and evaluating inbred and hybrid lines in the CMS system is costly and time-consuming, genomic prediction of parental lines and hybrids is based on genetic data genotype. We generated 602 hybrids by crossing two female (A) lines with 301 diverse and elite male (R) lines from the sorghum association panel and collected phenotypic data for agronomic traits over two years. We genotyped the inbred parents using whole genome resequencing and used 2,687,342 high quality (minor allele frequency > 2%) single nucleotide polymorphisms for genomic prediction. For grain yield, the experimental hybrids exhibited an average mid-parent heterosis of 40%. Genomic best linear unbiased prediction (GBLUP) for hybrid performance yielded an average prediction accuracy of 0.76–0.93 under the prediction scenario where both parental lines in validation sets were included in the training sets (T2). However, when only female tester was shared between training and validation sets (T1F), prediction accuracies declined by 12–90%, with plant height showing the greatest decline. Mean accuracies for predicting the general combining ability of male parents ranged from 0.33 to 0.62 for all traits. Our results showed hybrid performance for agronomic traits can be predicted with high accuracy, and optimizing genomic relationship is essential for optimal training population design for genomic selection in sorghum breeding.

Funder

U.S. Department of Energy’s Advanced Research

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology

Reference52 articles.

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