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Biology subjects

Subedi, M.

Publications and source records attributed to Subedi, M..

2 recordsLinked to original sources

Variability in mineral composition of Canadian lentil cultivars

Lentils are a good source of essential minerals for the proper functioning of the human body. We evaluated 34 cultivars and elite lentil lines representing the breadth of the Canadian breeding program. Trials were established in 10 site-years across Saskatchewan Province. Concentrations of 27 minerals were quantified with an inductive coupled argon plasma emission spectrometer in whole and dehulled lentil seeds. Li, V, Cr, Co, As, Ag, Cd, Sn, La, Hg, and Pb had concentrations below the quantification limit and were excluded from further analysis. The effects of site year, tissue type (whole and dehulled), and lentil genotypes were analyzed using a mixed model. Mineral concentrations of Na, K, Ca, Mg, Cu, B, and Ba were stable across site years. Na, Zn, P, Cu, Se, and Mo had similar concentrations in whole and dehulled seeds. Ca, Fe, Mg, Mn, B, Al, and Ba were more concentrated in whole seeds, while K, S, and Ni were higher in dehulled seeds. Several lentil genotypes had outstanding concentrations of several minerals. Lentil genotypes with a higher composition of several minerals could be a starting point for enhancing mineral composition in lentils.

genetics↗

Emergence of multiple foraging strategies under competition

Foraging strategies are shaped by interactions with the environment, and evolve under metabolic constraints. Optimal strategies for isolated and competing organisms have been studied extensively in the absence of evolution. Much less is understood about how metabolic constraints shape the evolution of an organisms ability to detect food and move through its environment to find it. To address this question, we introduce a minimal agent-based model of the coevolution of two phenotypic attributes critical for successful foraging in crowded environments: movement speed and perceptual acuity. Under competition higher speed and acuity lead to better foraging success, but at higher metabolic cost. We derive the optimal foraging strategy for a single agent, and show that this strategy is no longer optimal for foragers in a group. We show that mutation and selection can lead to the coexistence of two strategies: A metabolically costly strategy with high acuity and velocity, and a metabolically cheap strategy. Generally, in evolving populations speed and acuity co-vary. Therefore, even under metabolic constraints, trade-offs between metabolically expensive traits are not guaranteed.

evolutionary biology↗