FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATION
Genomic prediction accuracy (r_MP) is affected by many factors, such as the trait heritability, training population size and structure, and the number of markers. This study’s objective was to investigate the factors associated with r_MP for the ear height and the plant height in two planting densit...
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doaj-a5b5535dd92d487dac495a09a4050f362020-11-25T03:18:22ZengFaculty of Agrobitechnical Sciences OsijekPoljoprivreda1330-71421848-80802020-01-012611016FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATIONVlatko Galić0Maja Mazur1Andrija Brkić2Mirna Volenik3Antun Jambrović4Zvonimir Zdunić5Domagoj Šimić6Agricultural Institute Osijek, Južno predgrađe 17, 31000 Osijek, CroatiaAgricultural Institute Osijek, Južno predgrađe 17, 31000 Osijek, CroatiaAgricultural Institute Osijek, Južno predgrađe 17, 31000 Osijek, CroatiaAgricultural Institute Osijek, Južno predgrađe 17, 31000 Osijek, CroatiaAgricultural Institute Osijek, Južno predgrađe 17, 31000 Osijek, Croatia; Centre of Excellence for Biodiversity and Molecular Plant Breeding, Svetošimunska 25, Zagreb, CroatiaAgricultural Institute Osijek, Južno predgrađe 17, 31000 Osijek, Croatia; Centre of Excellence for Biodiversity and Molecular Plant Breeding, Svetošimunska 25, Zagreb, CroatiaAgricultural Institute Osijek, Južno predgrađe 17, 31000 Osijek, Croatia; Centre of Excellence for Biodiversity and Molecular Plant Breeding, Svetošimunska 25, Zagreb, CroatiaGenomic prediction accuracy (r_MP) is affected by many factors, such as the trait heritability, training population size and structure, and the number of markers. This study’s objective was to investigate the factors associated with r_MP for the ear height and the plant height in two planting densities in testcrosses of maize (Zea mays L.) IBM population. Genetic correlations between the training and validation populations were calculated. The high heritability estimates and correlations between the traits were observed. The non-zero estimates of r_MP for all trait-density combinations implied an efficiency of genomic selection. The lower than expected values of genetic correlations were observed between the training and validation populations. However, a strong correlation was observed between a genetic correlation of training and the validation population and r_MP in all three sizes of training populations assessed (20-40%, 40-60%, and 60-80%), suggesting that the size of the training population can be kept low by an appropriate selection while maintaining a high r_MP. Further studies of relationships between the training and validation populations with larger effective population sizes are suggested, as reducing the size of training population while maintaining a high r_MP can facilitate a more effective allocation of resources in a maize breeding program.https://hrcak.srce.hr/file/347972genomic selectiongenomic prediction accuracytraining population sizeplanting densityplant architecture |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Vlatko Galić Maja Mazur Andrija Brkić Mirna Volenik Antun Jambrović Zvonimir Zdunić Domagoj Šimić |
spellingShingle |
Vlatko Galić Maja Mazur Andrija Brkić Mirna Volenik Antun Jambrović Zvonimir Zdunić Domagoj Šimić FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATION Poljoprivreda genomic selection genomic prediction accuracy training population size planting density plant architecture |
author_facet |
Vlatko Galić Maja Mazur Andrija Brkić Mirna Volenik Antun Jambrović Zvonimir Zdunić Domagoj Šimić |
author_sort |
Vlatko Galić |
title |
FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATION |
title_short |
FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATION |
title_full |
FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATION |
title_fullStr |
FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATION |
title_full_unstemmed |
FACTORS AFFECTING THE ACCURACY OF GENOMIC PREDICTIONS IN TESTCROSSES OF MAIZE BIPARENTAL POPULATION |
title_sort |
factors affecting the accuracy of genomic predictions in testcrosses of maize biparental population |
publisher |
Faculty of Agrobitechnical Sciences Osijek |
series |
Poljoprivreda |
issn |
1330-7142 1848-8080 |
publishDate |
2020-01-01 |
description |
Genomic prediction accuracy (r_MP) is affected by many factors, such as the trait heritability, training population size and structure, and the number of markers. This study’s objective was to investigate the factors associated with r_MP for the ear height and the plant height in two planting densities in testcrosses of maize (Zea mays L.) IBM population. Genetic correlations between the training and validation populations were calculated. The high heritability estimates and correlations between the traits were observed. The non-zero estimates of r_MP for all trait-density combinations implied an efficiency of genomic selection. The lower than expected values of genetic correlations were observed between the training and validation populations. However, a strong correlation was observed between a genetic correlation of training and the validation population and r_MP in all three sizes of training populations assessed (20-40%, 40-60%, and 60-80%), suggesting that the size of the training population can be kept low by an appropriate selection while maintaining a high r_MP. Further studies of relationships between the training and validation populations with larger effective population sizes are suggested, as reducing the size of training population while maintaining a high r_MP can facilitate a more effective allocation of resources in a maize breeding program. |
topic |
genomic selection genomic prediction accuracy training population size planting density plant architecture |
url |
https://hrcak.srce.hr/file/347972 |
work_keys_str_mv |
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