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Updated: Mar 22, 2026

Plant Growth and Agrobacterium-mediated Floral-dip Transformation of the Extremophyte Schrenkiella parvula
Published on: January 7, 2019
Phased-genome assemblies of saltgrass reveal structural dynamics and genomic basis for extreme salt tolerance and
Kashif Nawaz1, Izamar Olivas Orduna1, Dal-Hoe Koo2
1King Abdullah University of Science and Technology (KAUST), Thuwal, Saudi Arabia.
Abstract:
The climate crisis poses a critical challenge to agriculture, with freshwater scarcity becoming a major constraint on crop production. Harnessing halophytic adaptations for growth in saline environments offers a promising path for neodomestication of salt-tolerant crops. Distichlis spp. (saltgrass)-a genus of dioecious, halophytic C4 grasses in the PACMAD clade-thrives in extreme saline conditions, making it a compelling system for studying salinity tolerance and adaptation. Here, we present high-quality phased genome assemblies of four Distichlis genets, revealing an allotetraploid genome (576-610 Mb) with two highly syntenic but degenerate subgenomes, each exhibiting over 30% gene loss across orthologous pairs. Comparative genomic analyses revealed a novel chromosome fusion event that distinguishes D. spicata (2n = 40) from D. stricta (2n = 38), highlighting a chromosomal rearrangement that differentiates the species. Population genomic analysis of 364 genets across 35 populations demonstrated strong geographic separation and confirmed D. stricta as a distinct species. Additionally, we identified a 7-Mb B chromosome in two genets, which displayed features common to B chromosomes in other species. Using k-mer analyses of sex-typed populations, we identified an 8-Mb sex-determining region in female genets that contains 24 candidate genes, confirming that Distichlis has a ZW-type sex determination system. Expression profiling of plants under extreme (seawater-level) salinity revealed key salt-tolerance genes that are also implicated in drought resilience, suggesting an overlapping genetic basis for these stress responses. These genomic resources establish a foundation for the neodomestication of saltgrass as a climate-resilient crop for saline agroecosystems and enhance our understanding of genome evolution in halophytic grasses.
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