ArticleBMC genomics2025
Integrating differential expression under drought with gene family expansion unique to drought-tolerant species prioritizes candidate genes for drought adaptation in Brassicaceae species.
Article in BMC genomics, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 1 paper.
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1 citing paper in PubMed.
- Genome-Wide Identification of thePlants (Basel, Switzerland) · 2026Article
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Abstract
backgroundIn order to prioritize candidate genes for drought adaptation, we analyze genomic data of the more drought-resistant Brassicaceae species Eutrema salsugineum and Arabidopsis lyrata compared to more drought-sensitive species Arabidopsis thaliana and Brassica napus. We combine gene family expansion, which is an important driver of evolution in plants, unique to the drought-resistant species with differential expression under drought (DE).
resultsWe show that combining trait-specific gene family expansion with differential expression identifies a concise set of candidate genes. To demonstrate that these are relevant for drought adaptation in tolerant species, we show enrichment of DE conserved between both tolerant species, DE unique to the tolerant species, and up-regulation. We show that specific functions are enriched, and that the set contains genes with functions such as root development in line with drought adaptation based on evidence from other species, while the background of all differentially expressed genes (DEGs) contains many general stress response genes. Whereas DEGs in general are rarely under diversifying selection, signatures of diversifying selection are slightly enriched in the candidate gene families, highly significantly enriched in DEGs in tolerant species-specific expanded gene families, and, in contrast, not enriched in DEGs in sensitive species-specific expanded gene families.
conclusionsOur approach identifies a concise and functionally relevant set of candidate genes for drought adaptation with promising targets for functional studies and crop improvement for drought tolerance. We propose that our method can also be used to prioritize candidate genes for adaptation to other environmental factors.
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