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Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley

Background: The expected genetic variance is an important criterion for the selection of crossing partners which will produce superior combinations of genotypes in their progeny. The advent of molecular markers has opened up new vistas for obtaining precise predictors for the genetic variance of a c...

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Autores principales: Osthushenrich, Tanja, Frisch, Matthias, Zenke-Philippi, Carola, Jaiser, Heidi, Spiller, Monika, Cselényi, László, Krumnacker, Kerstin, Boxberger, Susanna, Kopahnke, Doris, Habekuß, Antje, Ordon, Frank, Herzog, Eva
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6309237/
https://www.ncbi.nlm.nih.gov/pubmed/30627135
http://dx.doi.org/10.3389/fpls.2018.01899
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author Osthushenrich, Tanja
Frisch, Matthias
Zenke-Philippi, Carola
Jaiser, Heidi
Spiller, Monika
Cselényi, László
Krumnacker, Kerstin
Boxberger, Susanna
Kopahnke, Doris
Habekuß, Antje
Ordon, Frank
Herzog, Eva
author_facet Osthushenrich, Tanja
Frisch, Matthias
Zenke-Philippi, Carola
Jaiser, Heidi
Spiller, Monika
Cselényi, László
Krumnacker, Kerstin
Boxberger, Susanna
Kopahnke, Doris
Habekuß, Antje
Ordon, Frank
Herzog, Eva
author_sort Osthushenrich, Tanja
collection PubMed
description Background: The expected genetic variance is an important criterion for the selection of crossing partners which will produce superior combinations of genotypes in their progeny. The advent of molecular markers has opened up new vistas for obtaining precise predictors for the genetic variance of a cross, but fast prediction methods that allow plant breeders to select crossing partners based on already available data from their breeding programs without complicated calculations or simulation of breeding populations are still lacking. The main objective of the present study was to demonstrate the practical applicability of an analytical approach for the selection of superior cross combinations with experimental data from a barley breeding program. We used genome-wide marker effects to predict the yield means and genetic variances of 14 DH families resulting from crosses of four donor lines with five registered elite varieties with the genotypic information of the parental lines. For the validation of the predicted parameters, the analytical approach was extended by the masking variance as a major component of phenotypic variance. The predicted parameters were used to fit normal distribution curves of the phenotypic values and to conduct an Anderson-Darling goodness-of-fit test for the observed phenotypic data of the 14 DH families from the field trial. Results: There was no evidence that the observed phenotypic values deviated from the predicted phenotypic normal distributions in 13 out of 14 crosses. The correlations between the observed and the predicted means and the observed and predicted variances were r = 0.95 and r = 0.34, respectively. After removing two crosses with downward outliers in the phenotypic data, the correlation between the observed and predicted variances increased to r = 0.76. A ranking of the 14 crosses based on the sum of predicted mean and genetic variance identified the 50% best crosses from the field trial correctly. Conclusions: We conclude that the prediction accuracy of the presented approach is sufficiently high to identify superior crosses even with limited phenotypic data. We therefore expect that the analytical approach based on genome-wide marker effects is applicable in a wide range of breeding programs.
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spelling pubmed-63092372019-01-09 Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley Osthushenrich, Tanja Frisch, Matthias Zenke-Philippi, Carola Jaiser, Heidi Spiller, Monika Cselényi, László Krumnacker, Kerstin Boxberger, Susanna Kopahnke, Doris Habekuß, Antje Ordon, Frank Herzog, Eva Front Plant Sci Plant Science Background: The expected genetic variance is an important criterion for the selection of crossing partners which will produce superior combinations of genotypes in their progeny. The advent of molecular markers has opened up new vistas for obtaining precise predictors for the genetic variance of a cross, but fast prediction methods that allow plant breeders to select crossing partners based on already available data from their breeding programs without complicated calculations or simulation of breeding populations are still lacking. The main objective of the present study was to demonstrate the practical applicability of an analytical approach for the selection of superior cross combinations with experimental data from a barley breeding program. We used genome-wide marker effects to predict the yield means and genetic variances of 14 DH families resulting from crosses of four donor lines with five registered elite varieties with the genotypic information of the parental lines. For the validation of the predicted parameters, the analytical approach was extended by the masking variance as a major component of phenotypic variance. The predicted parameters were used to fit normal distribution curves of the phenotypic values and to conduct an Anderson-Darling goodness-of-fit test for the observed phenotypic data of the 14 DH families from the field trial. Results: There was no evidence that the observed phenotypic values deviated from the predicted phenotypic normal distributions in 13 out of 14 crosses. The correlations between the observed and the predicted means and the observed and predicted variances were r = 0.95 and r = 0.34, respectively. After removing two crosses with downward outliers in the phenotypic data, the correlation between the observed and predicted variances increased to r = 0.76. A ranking of the 14 crosses based on the sum of predicted mean and genetic variance identified the 50% best crosses from the field trial correctly. Conclusions: We conclude that the prediction accuracy of the presented approach is sufficiently high to identify superior crosses even with limited phenotypic data. We therefore expect that the analytical approach based on genome-wide marker effects is applicable in a wide range of breeding programs. Frontiers Media S.A. 2018-12-21 /pmc/articles/PMC6309237/ /pubmed/30627135 http://dx.doi.org/10.3389/fpls.2018.01899 Text en Copyright © 2018 Osthushenrich, Frisch, Zenke-Philippi, Jaiser, Spiller, Cselényi, Krumnacker, Boxberger, Kopahnke, Habekuß, Ordon and Herzog. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Osthushenrich, Tanja
Frisch, Matthias
Zenke-Philippi, Carola
Jaiser, Heidi
Spiller, Monika
Cselényi, László
Krumnacker, Kerstin
Boxberger, Susanna
Kopahnke, Doris
Habekuß, Antje
Ordon, Frank
Herzog, Eva
Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley
title Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley
title_full Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley
title_fullStr Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley
title_full_unstemmed Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley
title_short Prediction of Means and Variances of Crosses With Genome-Wide Marker Effects in Barley
title_sort prediction of means and variances of crosses with genome-wide marker effects in barley
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6309237/
https://www.ncbi.nlm.nih.gov/pubmed/30627135
http://dx.doi.org/10.3389/fpls.2018.01899
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