A haplotype‐based approach to explore genotype‐by‐environment interactions for barley yield

Climate change poses a significant threat to cereal production, making it increasingly important to understand the role of genotype-by-environment interactions (GEIs) in crops. Traditional breeding approaches consider GEIs at a whole genotype level missing valuable breeding potential that can be dissected by exploring this relationship at a chromosome segment level. A robust commercial dataset consisting of 961 spring barley (Hordeum vulgare L.) genotypes grown across 12 sites was used to explore these questions and to co-locate haplotypes under GEIs with key physiology genes to better understand the drivers of GEIs. A genomic best linear unbiased prediction model for barley yield was fitted to the data, where the GEI term had a factor analytic 4 (FA4) variance structure. Using the first three factor loadings from the FA4 model, the 12 sites were grouped into four environmental clusters. The barley single nucleotide polymorphisms were partitioned into 1741 haploblocks based on linkage disequilibrium and the local genomic estimated breeding values were calculated for each haplotype in each environmental cluster. The GEIs of each haploblock across the environmental clusters were explored, and those under large GEIs were identified across several chromosomes and found to vastly vary in size. Further analysis of a few key haploblocks revealed that for some blocks the best haplotypes were similar across clusters, but for others they were vastly different. This study provides a novel framework for investigating GEIs at a haplotype level, which can be utilized in a range of breeding applications across traits and crops.

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Publication Details

Journal
The Plant Genome
Published
2026-09-29
DOI
https://doi.org/10.1002/tpg2.70310
Primary Topic
Genetic Mapping and Diversity in Plants and Animals
Type
article
Field-Weighted Citation Impact
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article

A haplotype‐based approach to explore genotype‐by‐environment interactions for barley yield

Aanandini Ganesalingam, Samir Alahmad, Kai P. Voss‐Fels, Hannah Robinson et al.
The Plant Genome
Genetic Mapping and Diversity in Plants and Animals
article

A haplotype‐based approach to explore genotype‐by‐environment interactions for barley yield

Aanandini Ganesalingam, Samir Alahmad, Kai P. Voss‐Fels, Hannah Robinson, Lee Thomas Hickey, Madhav Pundalik Pandit, Silvina Baraibar, Zachary Aldiss, Stephanie M. Brunner, David Moody
article en

Abstract

Climate change poses a significant threat to cereal production, making it increasingly important to understand the role of genotype-by-environment interactions (GEIs) in crops. Traditional breeding approaches consider GEIs at a whole genotype level missing valuable breeding potential that can be dissected by exploring this relationship at a chromosome segment level. A robust commercial dataset consisting of 961 spring barley (Hordeum vulgare L.) genotypes grown across 12 sites was used to explore these questions and to co-locate haplotypes under GEIs with key physiology genes to better understand the drivers of GEIs. A genomic best linear unbiased prediction model for barley yield was fitted to the data, where the GEI term had a factor analytic 4 (FA4) variance structure. Using the first three factor loadings from the FA4 model, the 12 sites were grouped into four environmental clusters. The barley single nucleotide polymorphisms were partitioned into 1741 haploblocks based on linkage disequilibrium and the local genomic estimated breeding values were calculated for each haplotype in each environmental cluster. The GEIs of each haploblock across the environmental clusters were explored, and those under large GEIs were identified across several chromosomes and found to vastly vary in size. Further analysis of a few key haploblocks revealed that for some blocks the best haplotypes were similar across clusters, but for others they were vastly different. This study provides a novel framework for investigating GEIs at a haplotype level, which can be utilized in a range of breeding applications across traits and crops.

The Plant GenomeVol. 19(4)
The University of Queensland (AU), Hochschule Geisenheim University (DE), InterGrain
Climate action
Openalex Percentile: Top 12%
Genetic Mapping and Diversity in Plants and Animals
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