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Escobar, K.

Publications and source records attributed to Escobar, K..

2 recordsLinked to original sources

Phylogenomics reveals reticulate evolution in the Chenopodium album complex

Background and AimsComplex genomic histories driven by hybridization and polyploidy can shape key plant traits such as defense, stress tolerance, and toxicity, particularly in Amaran-thaceae, which includes crops such as quinoa and spinach. Within this family, white goosefoot (Chenopodium album) is both a widespread agricultural weed and a traditional food resource. However, its evolutionary history is complicated by discordant signals among genomic markers within the C. album complex, comprising diploid, tetraploid, and hexaploid taxa. Here, we tested whether reticulate evolution underlies this genome-wide discordance. MethodsUsing genome-scale phylogenomic data, we analysed 2,298 conserved nuclear loci (BUSCO genes) across 27 Amaranthaceae genomes. Both single- and multicopy gene families were included to capture signals of gene duplication, incomplete lineage sorting, and hybridization. Complementary phylogenomic approaches were used to evaluate whether the evolutionary history is best supported by strictly bifurcating relationships or by reticulate evolution. Key ResultsA consistent C. album lineage was recovered, comprising tetraploid and hexaploid C. album cytotypes together with C. suecicum, C. strictum, C. formosanum, C. acuminatum, and C. opulifolium. Phylogenetic discordance was concentrated within Chenopodium, particularly around the C. album and C. quinoa lineages. Models incorporating hybridization fit better than strictly bifurcating relationships, supporting at least two reticulation events. Hybridization signals were detected in 271 loci in tetraploid and 270 in hexaploid C. album, of which 232 were shared, indicating a shared hybrid origin rather than independent lineages. ConclusionsThe evolutionary history of the C. album lineage is best explained by reticulate processes involving hybridization and polyploidy. Conserved nuclear loci retain persistent signatures of these events, helping to resolve complex evolutionary histories in polyploid plant systems.

plant biology↗

A genomic and functional framework for the rapid domestication of the wild plant Chenopodium album

Global reliance on a small number of genetically uniform crops makes our food system increasingly vulnerable to pests, diseases, and climate change, highlighting the need to develop resilient local species as crops. Chenopodium album, a stress-tolerant, protein-rich wild plant whose seeds were part of prehistoric Northern European diets and whose leaves are still foraged worldwide, remains undomesticated despite its agrifood potential. We established a Danish collection of 143 accessions and combined seed metabolomics, ploidy assessment and genomics to uncover the molecular basis of key nutritional and anti-nutritional traits. Seed profiling revealed substantial variation in protein content (14-22%), comparable to or higher than major crops, and 16 distinct triterpenoid saponins, which are widespread bitter and anti-nutritional compounds. Seed production of field-grown lines reached up to 1.5 t/ha in trials conducted in Denmark, demonstrating promising yield potential. A high-quality tetraploid genome of a low-saponin line was assembled and contrasted with resequencing of a diploid high-saponin line in order to uncover the genetic basis of saponin variation in C. album. Comparative genomic, phylogenetic, and transcriptomic analyses identified structural variants and candidate genes associated with saponin biosynthesis, and functional validation confirmed the coordinated activity of a {beta}-amyrin synthase, three CYP716 cytochromes P450, and a glucuronosyltransferase that reconstitute the core C. album saponin pathway. Together, these results define the genomic and biochemical foundation of C. album, establishing a platform for its rapid domestication as a locally adapted, high-protein seed crop and a model for translating wild plant diversity into future food security.

plant biology↗