Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate Wheatgrass

Intermediate wheatgrass (IWG) is a perennial species and has edible and nutritious grain and desirable agronomic traits, including large seed size, high grain yield, and biomass. It also has the potential to provide ecosystem services and an economic return to farmers. However, because of its allohe...

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Main Authors: Xiaofei Zhang, Ahmad Sallam, Liangliang Gao, Traci Kantarski, Jesse Poland, Lee R. DeHaan, Donald L. Wyse, James A. Anderson
Format: Article
Language:English
Published: Wiley 2016-03-01
Series:The Plant Genome
Online Access:https://dl.sciencesocieties.org/publications/tpg/articles/9/1/plantgenome2015.07.0059
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spelling doaj-d5f87ee4aaaa466089d8f425d64f8e922020-11-25T01:24:08ZengWileyThe Plant Genome1940-33722016-03-019110.3835/plantgenome2015.07.0059plantgenome2015.07.0059Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate WheatgrassXiaofei ZhangAhmad SallamLiangliang GaoTraci KantarskiJesse PolandLee R. DeHaanDonald L. WyseJames A. AndersonIntermediate wheatgrass (IWG) is a perennial species and has edible and nutritious grain and desirable agronomic traits, including large seed size, high grain yield, and biomass. It also has the potential to provide ecosystem services and an economic return to farmers. However, because of its allohexaploidy and self-incompatibility, developing molecular markers for genetic analysis and molecular breeding has been challenging. In the present study, using genotyping-by-sequencing (GBS) technology, 3436 genome-wide markers discovered in a biparental population with 178 genets, were mapped to 21 linkage groups (LG) corresponding to 21 chromosomes of IWG. Genomic prediction models were developed using 3883 markers discovered in a breeding population containing 1126 representative genets from 58 half-sib families. High predictive ability was observed for seven agronomic traits using cross-validation, ranging from 0.46 for biomass to 0.67 for seed weight. Optimization results indicated that 8 to 10 genets from each half-sib family can form a good training population to predict the breeding value of their siblings, and 1600 genome-wide markers are adequate to capture the genetic variation in the current breeding population for genomic selection. Thus, with the advances in sequencing-based marker technologies, it was practical to perform molecular genetic analysis and molecular breeding on a new and challenging species like IWG, and genomic selection could increase the efficiency of recurrent selection and accelerate the domestication and improvement of IWG.https://dl.sciencesocieties.org/publications/tpg/articles/9/1/plantgenome2015.07.0059
collection DOAJ
language English
format Article
sources DOAJ
author Xiaofei Zhang
Ahmad Sallam
Liangliang Gao
Traci Kantarski
Jesse Poland
Lee R. DeHaan
Donald L. Wyse
James A. Anderson
spellingShingle Xiaofei Zhang
Ahmad Sallam
Liangliang Gao
Traci Kantarski
Jesse Poland
Lee R. DeHaan
Donald L. Wyse
James A. Anderson
Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate Wheatgrass
The Plant Genome
author_facet Xiaofei Zhang
Ahmad Sallam
Liangliang Gao
Traci Kantarski
Jesse Poland
Lee R. DeHaan
Donald L. Wyse
James A. Anderson
author_sort Xiaofei Zhang
title Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate Wheatgrass
title_short Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate Wheatgrass
title_full Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate Wheatgrass
title_fullStr Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate Wheatgrass
title_full_unstemmed Establishment and Optimization of Genomic Selection to Accelerate the Domestication and Improvement of Intermediate Wheatgrass
title_sort establishment and optimization of genomic selection to accelerate the domestication and improvement of intermediate wheatgrass
publisher Wiley
series The Plant Genome
issn 1940-3372
publishDate 2016-03-01
description Intermediate wheatgrass (IWG) is a perennial species and has edible and nutritious grain and desirable agronomic traits, including large seed size, high grain yield, and biomass. It also has the potential to provide ecosystem services and an economic return to farmers. However, because of its allohexaploidy and self-incompatibility, developing molecular markers for genetic analysis and molecular breeding has been challenging. In the present study, using genotyping-by-sequencing (GBS) technology, 3436 genome-wide markers discovered in a biparental population with 178 genets, were mapped to 21 linkage groups (LG) corresponding to 21 chromosomes of IWG. Genomic prediction models were developed using 3883 markers discovered in a breeding population containing 1126 representative genets from 58 half-sib families. High predictive ability was observed for seven agronomic traits using cross-validation, ranging from 0.46 for biomass to 0.67 for seed weight. Optimization results indicated that 8 to 10 genets from each half-sib family can form a good training population to predict the breeding value of their siblings, and 1600 genome-wide markers are adequate to capture the genetic variation in the current breeding population for genomic selection. Thus, with the advances in sequencing-based marker technologies, it was practical to perform molecular genetic analysis and molecular breeding on a new and challenging species like IWG, and genomic selection could increase the efficiency of recurrent selection and accelerate the domestication and improvement of IWG.
url https://dl.sciencesocieties.org/publications/tpg/articles/9/1/plantgenome2015.07.0059
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