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strontium/mayi

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Relation Between Calcium and Strontium Transport Rates as Determined Simultaneously in the Primary Root of Zea mays.

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Root segments of Zea mays 55 mm long, were exposed to nutrient containing (85)Sr and (45)Ca tracers. Translocation rather than uptake was measured, using a newly-designed glass compartmentation system and validated tracer analytic model. Ca transport from solutions containing between 0.25 and 5.0 mm

Transport of calcium and strontium in the primary root of Zea mays. USNRDL-TR-1039.

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Uptake of Strontium by Roots of Zea Mays.

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Effects on Zea mays Seedlings of a Strontium Replacement for Calcium in Nutrient Media.

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Effect of dietary protein source and corn oil and cellulose levels on strontium-calcium discrimination in growing rats.

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Plant root systems play a fundamental role in nutrient and water acquisition. In resource-limited soils, modification of root system architecture is an important strategy to optimize plant performance. Most terrestrial plants also form symbiotic associations with arbuscular mycorrhizal fungi to
Pinto beans (Phaselous vulgaris), sweet corn (Zea mays), and zucchini squash (Cucurbita pepo) were grown in a field pot study using alluvial floodplain soils contaminated with various radionuclides within Los Alamos Canyon (LAC) at Los Alamos National Laboratory, New Mexico. Soils as well as washed

Role of calcium in the polar secretion of indoleacetic Acid.

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The rate of auxin transport in sunflower hypocotyls (Helianthus annuus L. cv ;Russian mammoth') or corn coleoptiles (Zea mays L. cv ;WF9 x 38') was less in seedlings grown in Ca-deficient medium than in controls. The rate of IAA transport depended on the concentration of Ca in the root medium up to
When the seminal root system of 14-day-old corn (Zea mays cv. Dekalb 202) was subjected to O(2) stress, nodal roots with well developed cortical air spaces (aerenchyma) grew into the deoxygenated solution. Microscopic examination showed that there was extensive breakdown of cells in the midcortex of

Oxidation of reduced nicotinamide adenine dinucleotide phosphate by isolated corn mitochondria.

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Isolated corn (Zea mays L.) mitochondria were found to oxidize reduced nicotinamide adenine dinucleotide phosphate in a KCl reaction medium. This oxidation was dependent on the presence of calcium or phosphate or both. Strontium and manganese substituted for calcium, but magnesium or barium did not.
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