Search PubMedSearch

SEARCH · Search PubMed

Results for “Chenopodium quinoa”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

5 recordsLinked to original sources

[Chemical and biological evaluation of quinua (Chenopodium quinoa Willd). Effect of the extraction of saponins by heat treatment].

The changes in proximate composition, amino acid content and protein efficiency ratio (PER) caused by hot-water extraction of the saponins were studied in four Bolivian varieties of quinua (Chenopodium quinoa, Willd). Detectable saponin was eliminated with an extraction at 70 degrees C. Extraction at 87 degrees C also eliminated the saponins but, in addition, had the tendency of slightly increasing the protein amino acid content. The maximum PER obtained was 2.99 for the Blanca variety, followed by 2.72 for the Sajama variety, also extracted at 87 degrees C (casein gave a PER value of 3.21).

Amino Acids, Essential

A CqbZIP55-CqPIF3 regulatory module associated with light-responsive flavonoid biosynthesis during quinoa seedling de-etiolation.

Quinoa (Chenopodium quinoa) is an emerging leafy vegetable and microgreen crop rich in health-promoting flavonoids, yet the regulatory mechanisms linking light perception to early metabolic adaptation remain unclear. Here, we integrated phenotypic, transcriptomic, metabolomic, and molecular analyses to investigate early de-etiolation responses in quinoa seedlings. Short-term light exposure rapidly promoted seedling establishment and induced transcriptional programs associated with photosynthesis, carbon metabolism, hormone signaling, and flavonoid biosynthetic gene expression, whereas metabolite changes were more limited, indicating temporal uncoupling between transcriptional activation and metabolic accumulation. Genome-wide bZIP analysis identified CqbZIP55 as a light-responsive regulator that directly binds and activates the CqCHS promoter. CqPIF3 also bound the CqCHS promoter and showed stronger transactivation activity than CqbZIP55 in transient reporter assays. Protein interaction and dual-luciferase assays showed that CqbZIP55 physically interacts with CqPIF3 and modulates CqPIF3-associated promoter activity. Exogenous quercetin upregulated CqbZIP55 and prolonged CqCHS expression, suggesting a candidate metabolite-associated reinforcement mechanism. Together, these findings support functional interplay between CqbZIP55 and CqPIF3 in light-responsive regulation of flavonoid biosynthetic gene expression in quinoa seedlings, while further quinoa-based perturbation and in vivo promoter-occupancy assays are required to establish their physiological role in planta. This study provides a framework for further investigation of photoprotective metabolic regulation in quinoa.

Chenopodium quinoa

Genetic control and distribution of leucine aminopeptidase in the cultivated chenopods (Chenopodium) and related weed taxa.

Isozymes of leucine aminopeptidase (LAP) in leaf tissue of the cultivated chenopods (Chenopodium quinoa and C. nuttalliae) and their sympatric weedy relatives (C. hircinum and C. berlandieri) can be electrophoretically resolved into a sum total of five anodally migrating bands. These are the products of two unlinked gene loci which apparently reflect genetic duplication via allotetraploidy. Accessions from the Andean and Mexican areas of cultivation are characterized by a lack of electrophoretically detectable variation. Andean weed and cultigen accessions appear to be genetically identical at both Lap loci, as do weed and cultigen material from Mexico. The two cultigens, and their sympatric weeds, can be differentiated by variation at the Lap-B locus, whereas they are monomorphic at Lap-A. This locus is, however, highly polymorphic in weedy C. berlandieri populations of western North America.

Alleles

Genetic complementation between natural strains of red clover mottle virus.

Three strains of red clover mottle virus were purified and their components separated by density gradient and isopycnic centrifugation. The infectivity of the purified components and of homologous and heterologous mixtures of them was assayed using Phaseolus vulgaris. Infectivity enhancement occurred in all combinations of middle and bottom components. Local lesion isolates from heterologous combinations were propagated and their symptoms on Pisum sativum and Chenopodium quinoa are described. It was concluded that symptoms on both host species are determined by the middle component. Top component formation appeared to be influenced by both bottom and middle components.

Centrifugation, Density Gradient

Phylogenomics reveals persistent gene-tree discordance in the Chenopodium album aggregate.

BACKGROUND AND AIMS: Complex genomic histories shaped by hybridisation and polyploidy can influence traits related to plant defence, stress tolerance and toxicity, particularly in Amaranthaceae, which includes crops such as quinoa and spinach. Within this family, white goosefoot (Chenopodium album), a widespread agricultural weed and traditional food resource, belongs to a diploid-polyploid aggregate with extensive phylogenetic discordance. Clarifying its evolutionary history provides context for interpreting ecologically and agronomically relevant trait variation across the aggregate. Building on the established genome-lineage framework, we tested whether discordance persists when constituent genome-lineage components are represented separately and whether the remaining signal is compatible with reticulate evolution. METHODS: We analysed 2,298 conserved nuclear BUSCO families across 27 assembly-level terminals using tree- and network-based approaches. Genome-lineage-aware analyses used 2,156 families after separating polyploid Chenopodium into A-H components, with Dysphania ambrosioides as outgroup. HyDe tested site-pattern asymmetry under global false-discovery-rate correction. KEY RESULTS: Assembly-level analyses grouped the Danish C. album aggregate accession Ca6-1 with hexaploid C. album sensu stricto dcCheAlbu1.1, whereas relationships among surrounding Chenopodium taxa were less stable. Genome-lineage-aware analyses recovered the expected B-, C- and D-affinity relationships, but substantial gene-family heterogeneity persisted. Reticulate network models fitted the assembly-level data better than bifurcating models, although inferred patterns differed between methods. HyDe detected significant site-pattern asymmetry in a small subset of loci, with most retained signal shared between the focal assemblies. CONCLUSIONS: Gene-tree discordance persists in the C. album aggregate after genome-lineage separation. The established genome-lineage framework captures the dominant phylogenomic structure, while residual heterogeneity is compatible with both tree-like and reticulate processes without identifying direct progenitors or a unique hybridisation history. This framework supports future analyses of lineage-specific and trait-associated loci related to plant defence, food quality and toxicity in C. album and related Amaranthaceae.

Chenopodium album