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February 11, 2026Theoretical and Applied Genetics1 citationsOpen Access

The transfer of 98% of the genome of Aegilops mutica into wheat (Triticum aestivum)

JKJulie KingSGSurbhi GrewalCYCaiyun Yang

Key Points

  • This study aims to transfer the majority of the Aegilops mutica genome into wheat to expand genetic variation.
  • Developed new wheat-Ae. mutica introgression lines with 98% genome transfer.
  • Used kompetitive allele-specific PCR (KASP) for genotyping.
  • Employed multi-colour genomic in situ hybridisation.
  • Conducted low coverage whole-genome sequencing.
  • Created 68 new introgression lines with 57 unique Ae. mutica segments.
  • Revealed homoeologous recombination hotspots between wheat and Ae. mutica.
  • Identified novel introgressed segments previously undetectable.

Abstract

Abstract Key message New wheat- Ae. mutica introgression lines will deliver new genetic variation for hexaploid wheat breeding and provide new information on the distribution of homoeologous recombination between wheat and Ae. mutica . Abstract Aegilops mutica Boiss. (2n = 2 × = 14, TT) is a wild relative of wheat that has been underutilised as a source of genetic variation for hexaploid wheat Triticum aestivum L. (2n = 6 × = 42; AABBDD), despite its potential to harbour important genetic diversity for a wide range of agronomically valuable traits. This species has been extensively exploited by the Wheat Research Centre (WRC) at the University of Nottingham to create a diverse resource of wheat- Ae. mutica introgression lines. In this study, we present the most comprehensive transfer of the Ae. mutica genome into wheat to date, with 98% of the genome now present in wheat through the development of new wheat– Ae. mutica introgression lines. These 68 new lines, comprising 57 unique Ae. mutica introgressions, have been characterised using kompetitive allele-specific PCR (KASP) genotyping, multi-colour genomic in situ hybridisation and low coverage whole-genome sequencing. This thorough characterisation has revealed the distribution of homoeologous recombination sites between wheat and Ae. mutica chromosomes, uncovering recombination “hotspots” and novel introgressed segments that were previously undetectable using conventional genotyping methods. This resource significantly expands the genetic diversity available for wheat improvement and offers a powerful platform for linking traits to specific genotypes. The creation and characterisation of this near-complete set of Ae. mutica introgressions will be invaluable for wheat researchers and breeders worldwide.

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Cite This Study

King et al. (2026) studied this question.

synapsesocial.com/papers/698c1cb3267fb587c655f4b6https://doi.org/10.1007/s00122-026-05173-1
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