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Filters: Tags: vascular plants (X) > partyWithName: Kurt P Kowalski (X) > partyWithName: U.S. Geological Survey (X)

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During 2018, uncrewed aerial vehicles (UAVs or 'drones') were used to collect spatially referenced aerial imagery from 20 management units (sites) enrolled in the Phragmites Adaptive Management Framework, a collective learning program developed by the Great Lakes Phragmites Collaborative. Management units were located in Michigan, Ohio, and Wisconsin (USA). Invasive Phragmites australis (hereafter "Phragmites") had been managed at each management units some time previously by the landowner or land manager, and aerial imagery was then collected to create cover classifications distinguishing live and dead Phragmites from the surrounding landscape using object-based image analysis with training based on ground-truth...
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Plant roots have the best-understood mutualisms with microbes, but leaf and bract cell endosymbiosis have not been previously reported. Leaf and bract cells of more than 30 species in 18 families of seed plants were surveyed for the presence of intracellular bacteria and several experiments were designed to find and analyze nutrient exchanges between bacteria and plant cells. This dataset contains the results of 1) histochemical analyses to detect hormones, superoxide, and nitrogenous chemicals around bacteria within plant leaf and bract cells, 2) experiments to assess the differential absorption of isotopic nitrogen into plants, and 3) genetic analysis of bacteria isolated from plant material.


    map background search result map search result map Land cover classifications and associated data from treatment areas enrolled in the Phragmites Adaptive Management Framework, 2018 Histochemical study of nitrogen-transfer endosymbiosis Land cover classifications and associated data from treatment areas enrolled in the Phragmites Adaptive Management Framework, 2018 Histochemical study of nitrogen-transfer endosymbiosis