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Genomic approaches to build de novo elite breeding gene pools from locally adapted landraces

Safiétou Tooli Fall; Alexander Kena; Brian R. Rice; Ghislain Kanfany; Cyril Diatta; Ndjido A. Kane; Allan K. Fritz; Geoffrey P. Morris
Theoretical and Applied Genetics · Vol. 139, Issue 1 · 2026

Abstract

Many nascent breeding programs aim to achieve genetic gain by crossing locally-elite germplasm, but a lack of systematic approaches to develop elite gene pools from locally adapted varieties hinders their progress. Motivated by the observation of undesirable transgressive segregation in presumed elite crosses in Senegalese cereal breeding programs, we designed approaches for de novo development of elite gene pools from locally adapted landrace-derived germplasm. We first define two types of “elite” germplasm: iso -elite, phenotypically similar and genetically homogeneous for locally adapted traits (“attained traits”); versus allo -elite, phenotypically similar, but genetically heterogeneous for attained traits. Next, we defined two genomic approaches for de novo inference of elite gene pools: population-based genotypic inference (PGI) and QTL-based genotypic inference (QGI), and compared to a family-based phenotypic inference (FPI) approach. Using simulations that trace the evolution from locally adapted landraces to elite breeding lines, we evaluate the effectiveness of these strategies in nascent forward breeding programs. QGI accurately and cost-effectively identifies both iso- and allo -elite pairs, regardless of the underlying trait architecture, while PGI is less sensitive when trait architecture is oligogenic. Over ten cycles of phenotypic recurrent selection, programs based on iso -elite crosses consistently outperformed those based on allo -elite crosses for genetic gain. The findings highlight the value of trait genetic architecture knowledge for elite gene pool development and provide a practical roadmap for elite germplasm development in modernizing breeding programs.

Bibliographic Information

JournalTheoretical and Applied Genetics
PublisherSpringer
Publication Date2026-01-01
Publication Year2026
Volume139
Issue1
Document TypeJournal Article
Print ISSN0040-5752
eISSN1432-2242
DOI10.1007/s00122-025-05124-2

Access Information

NARA Access Coverage1929-01-01~Current
Journal Homepagehttps://www.springer.com/journal/122
Publisher PageOpen Publisher Page
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