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Chromosome-scale genomes and population resequencing resolve subgenome diversity and halophyte adaptation in Salicornia

Sep 2026 · Nature Communications · Vol 17 · 0 citations · 81 references
Medicine

Abstract

Amid escalating water scarcity and groundwater depletion, halophytes such as Salicornia (Amaranthaceae) represent valuable models for extreme salt tolerance and hold promise for saltwater-based agriculture. Here, we show chromosome-scale genome assemblies for six Salicornia species, revealing four distinct subgenomes, reconciling our assemblies with two existing reference genomes (S. ramosissima UK and S. europaea China), correcting chromosome numbering and orientation. Comparative analyses across ploidy levels demonstrate genome expansion in North American lineages driven by Gypsy retrotransposons, and lineage-specific expansions of two gene families implicated in stress metabolism. Phylogenetic and population-structure analyses of a global resequencing panel of 318 accessions resolve interspecific relationships and establish curated germplasm collections for future crop breeding. Genetic analyses uncover a contrasting population-genetic signal on chromosome 6A between two species, highlighting an OSCA calcium-permeable channel gene as a candidate locus for osmotic adaptation. Together, these resources establish a genomic framework for Salicornia that supports evolutionary studies of halophyte adaptation and crop development. Salicornia is a halophytic flowering plants in the family Amaranthaceae. Here, the authors report chromosome-scale genome assemblies for six Salicornia species and reveal subgenome diversity, species boundaries and signatures of halophyte adaptation.

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