Abstract
Abstract
Background
Buckwheat (Fagopyrum spp.), belonging to the Polygonaceae family, is an ancient pseudo-cereal with high nutritional and nutraceutical properties. Buckwheat proteins are gluten-free and show balanced amino acid and micronutrient profiles, with higher content of health-promoting bioactive flavonoids that make it a golden crop of the future. Plant metabolome is increasingly gaining importance as a crucial component to understand the connection between plant physiology and environment and as a potential link between the genome and phenome. However, the genetic architecture governing the metabolome and thus, the phenome is not well understood. Here, we aim to obtain a deeper insight into the genetic architecture of seed metabolome in buckwheat by integrating high throughput metabolomics and genotyping-by-sequencing applying an array of bioinformatics tools for data analysis.
Results
High throughput metabolomic analysis identified 24 metabolites in seed endosperm of 130 diverse buckwheat genotypes. The genotyping-by-sequencing (GBS) of these genotypes revealed 3,728,028 SNPs. The Genome Association and Prediction Integrated Tool (GAPIT) assisted in the identification of 27 SNPs/QTLs linked to 18 metabolites. Candidate genes were identified near 100 Kb of QTLs, providing insights into several metabolic and biosynthetic pathways.
Conclusions
We established the metabolome inventory of 130 germplasm lines of buckwheat, identified QTLs through marker trait association and positions of potential candidate genes. This will pave the way for future dissection of complex economic traits in buckwheat.
Funder
NMHS GBPNIHESD, Almora, Uttrakhand, India
Publisher
Springer Science and Business Media LLC
Reference43 articles.
1. Zhou M, Ivan K, Sun HW, Nikhil KC, Wieslander G. Molecular Breeding and Nutritional Aspects of Buckwheat; Academic Press: Pittsburgh, PA, USA. 2016;203–207.
2. Hunt HV, Shang X, Jones MK. Buckwheat: a crop from outside the major Chinese domestication centres? A review of the archaeobotanical, palynological and genetic evidence. Veget Hist Archaeobot. 2018;27:493–506.
3. Bashir E, Mahajan R, Mir RA, Dar WA, Zargar SM. Unravelling the genetic variability and population structure of buckwheat (Fagopyrum spp): a collection of north western Himalayas. The Nucleus. 2021;64:93–101.
4. Joshi DC, Zhang K, Wang C, Chandora R, Khurshid M, Li J, et al. Strategic enhancement of genetic gain for nutraceutical development in buckwheat: a genomics-driven perspective. Biotechnol Advance. 2020;39:107479.
5. Ren Y, Wu S, Xia Y, Huang J, Ye J, Xuan Z, Li P, Du B. Probiotic-fermented black tartary buckwheat alleviates hyperlipidemia and gut microbiota dysbiosis in rats fed with a high-fat diet. Food Funct. 2021;12(13):6045–57.
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