Genomic Insights Into Heterosis: Dominance or Additive × Additive Interaction?

ABSTRACT Heterosis was documented in the 18th century, but its biological basis has been debated since. The theoretical framework proposed by Hill, and adapted by Lynch, is based on two central parameters: admixed composition ( S ), and the heterozygosity ( H ). Using genomic information, it is now possible to estimate independently the individual realized S i and H i . In this research, a methodology for estimating the contribution of dominance and additive × additive effects to heterosis is proposed. This approach would be especially relevant in cases where there is insufficient phenotypic information available, or an adequate genetic group experimental design, common in humans, wild species and other admixed populations. We also provide theoretical arguments highlighting the enhanced precision of the estimations of heterosis parameters through this method. Furthermore, we exemplify this procedure by analysing data from an experimental F 2 pig population, which was initially designed for QTL mapping. Notably, all animals in this population were genotyped (including F 1 and parental breeds), but phenotypic information was only available for F 2 individuals and included 13 traits related to growth, fat deposition, carcass characteristics and meat quality. Significant additive effects ( p < 0.05) were detected for longissimus muscle area and carcass temperature, suggesting complementary additive effects for these traits. Significant dominance and additive × additive effects were also detected for birth weight and carcass length, respectively ( p < 0.05), indicating that heterosis for these traits is primarily attributable to dominance and additive × additive interactions. These results demonstrate that the proposed methodology can successfully estimate the genetic components underlying heterosis and underscores the utility of this approach in situations where we possess genomic data but limited phenotypic data.

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Publication Details

Journal
Journal of Animal Breeding and Genetics
Published
2026-09-11
DOI
https://doi.org/10.1111/jbg.70075
Primary Topic
Genetic Mapping and Diversity in Plants and Animals
Type
article
Field-Weighted Citation Impact
0.00

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article

Genomic Insights Into Heterosis: Dominance or Additive × Additive Interaction?

R. J. C. Cantet, Sebastián Munilla, Natalia Soledad Forneris, G. Giovambattista et al.
Journal of Animal Breeding and Genetics
Genetic Mapping and Diversity in Plants and Animals
article

Genomic Insights Into Heterosis: Dominance or Additive × Additive Interaction?

R. J. C. Cantet, Sebastián Munilla, Natalia Soledad Forneris, G. Giovambattista, R. O. Bates, Catherine W. Ernst, Carolina Garcia-Baccino, Juan P. Steibel, A. Rogberg‐Muñoz, J. W. R. Martini
article en

Abstract

ABSTRACT Heterosis was documented in the 18th century, but its biological basis has been debated since. The theoretical framework proposed by Hill, and adapted by Lynch, is based on two central parameters: admixed composition ( S ), and the heterozygosity ( H ). Using genomic information, it is now possible to estimate independently the individual realized S i and H i . In this research, a methodology for estimating the contribution of dominance and additive × additive effects to heterosis is proposed. This approach would be especially relevant in cases where there is insufficient phenotypic information available, or an adequate genetic group experimental design, common in humans, wild species and other admixed populations. We also provide theoretical arguments highlighting the enhanced precision of the estimations of heterosis parameters through this method. Furthermore, we exemplify this procedure by analysing data from an experimental F 2 pig population, which was initially designed for QTL mapping. Notably, all animals in this population were genotyped (including F 1 and parental breeds), but phenotypic information was only available for F 2 individuals and included 13 traits related to growth, fat deposition, carcass characteristics and meat quality. Significant additive effects ( p < 0.05) were detected for longissimus muscle area and carcass temperature, suggesting complementary additive effects for these traits. Significant dominance and additive × additive effects were also detected for birth weight and carcass length, respectively ( p < 0.05), indicating that heterosis for these traits is primarily attributable to dominance and additive × additive interactions. These results demonstrate that the proposed methodology can successfully estimate the genetic components underlying heterosis and underscores the utility of this approach in situations where we possess genomic data but limited phenotypic data.

Journal of Animal Breeding and Genetics
CEA CESTA (FR), Consejo Nacional de Investigaciones Científicas y Técnicas (AR), Iowa State University (US), Universidad de Buenos Aires (AR), Iowa Space Grant Consortium (US), Dutch Centre for Field Ornithology (NL), Institute of Astronomy and Space Physics (AR), Instituto de Genética Veterinaria (AR), Michigan State University (US)
Michigan State University, Consejo Nacional de Investigaciones Científicas y Técnicas, Universidad Nacional de La Plata, Universidad de Buenos Aires
Openalex Percentile: Top 11%
Genetic Mapping and Diversity in Plants and Animals
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