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Laursen, K. H.

Publications and source records attributed to Laursen, K. H..

2 recordsLinked to original sources

Untargeted metabolomics reveals farming practice- and cultivar-driven modulations of pea (Pisum sativum L.) seed metabolome

This work presents untargeted LC-MS-based metabolome of ten cultivars of peas grown at three field sites following different agricultural practices. More than 1,200 metabolite features were detected in methanolic extracts of pea seed flours. Of these, nearly 300 features were identified using mass spectral libraries and advanced computational tools. Approximately 40 metabolites were found to be associated with location effect, independent of cultivar type. Organically grown pea samples showed lower level of the main pea triterpene glycoside soyasaponin I and higher levels of nitrogen-abundant amino acids indicating increased nitrogen availability in soil. More than 100 metabolites were associated with the location-independent cultivar effect. Two cultivars resistant to downy mildew and pea wilt, Akooma and Greenway, showed the most distinct metabolome with greater levels of polyunsaturated fatty acids and lipid oxidation products known to give beany off-flavors. The most commonly cultivated pea variety, Ingrid, had significantly lower levels or was completely devoid of hydroxycinnamic acid amides such as caffeoyl, feruloyl, and coumaroyl aspartates that were present in all other cultivars. Three chloroauxin metabolites, reported here for the first time, were identified through molecular networking within GNPS platform and propagation of annotation from a computationally predicted indole-3-acetic acid catabolite. Overall, the results indicate biochemical adaptation of pea plants to location or agricultural practice as reflected in their seed metabolome.

plant biology↗

Fertilizer and cultivar affect the barley rhizobiome, while domestication age only affects growth at low nutrient levels

Modern plant breeding has provided barley cultivars that produce high yields when supplied with ample amounts of mineral fertilizer. This narrow selection criterion may have reduced key traits facilitating vital microbiome-plant interactions. Here, we investigated the performance of three old and four modern barley cultivars grown at different fertilizer regimes and assessed the root microbiome composition using 16s rRNA amplicon sequencing. The objectives were to investigate: i) nutrient availability effects on nutrient uptake and biomass production and, ii) how domestication age, cultivar, and fertilizer treatment affect the root microbiome. Without fertilizer, old cultivars outperformed modern ones in terms of biomass and had higher leaf concentration of nitrogen, potassium, sulphur, iron, zinc, and copper. This suggests that older barley cultivars retained the ability of their wild ancestor to collaborate with the soil microbiome resulting in improved nutrient acquisition in low-input systems. Interestingly, domestication age did not significantly affect the diversity of the rhizo-microbiome, which was instead dependent on individual cultivar and fertilizer treatment. HighlightOlder barley cultivars outperform the modern ones in terms of biomass at low nutrient availability. However, the rhizo-microbial diversity depended on the individual cultivar and fertilizer regime.

plant biology↗