Harnessing landrace diversity empowers wheat breeding.

Cheng, Shifeng; Feng, Cong; Wingen, Luzie U; Cheng, Hong; Riche, Andrew B; Jiang, Mei; Leverington-Waite, Michelle; Huang, Zejian et al. · Nature · 2024

basic_science · Level V

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Abstract

Harnessing genetic diversity in major staple crops through the development of new breeding capabilities is essential to ensure food security<sup>1</sup>. Here we examined the genetic and phenotypic diversity of the A. E. Watkins landrace collection<sup>2</sup> of bread wheat (Triticum aestivum), a major global cereal, by whole-genome re-sequencing of 827 Watkins landraces and 208 modern cultivars and in-depth field evaluation spanning a decade. We found that modern cultivars are derived from two of the seven ancestral groups of wheat and maintain very long-range haplotype integrity. The remaining five groups represent untapped genetic sources, providing access to landrace-specific alleles and haplotypes for breeding. Linkage disequilibrium-based haplotypes and association genetics analyses link Watkins genomes to the thousands of identified high-resolution quantitative trait loci and significant marker-trait associations. Using these structured germplasm, genotyping and informatics resources, we revealed many Watkins-unique beneficial haplotypes that can confer superior traits in modern wheat. Furthermore, we assessed the phenotypic effects of 44,338 Watkins-unique haplotypes, introgressed from 143 prioritized quantitative trait loci in the context of modern cultivars, bridging the gap between landrace diversity and current breeding. This study establishes a framework for systematically utilizing genetic diversity in crop improvement to achieve sustainable food security.

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