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Updated: Mar 7, 2026

Lateral Root Inducible System in Arabidopsis and Maize
Published on: January 14, 2016
Transition from a maternal to external nitrogen source in maize seedlings
Kasra Sabermanesh1,2, Luke R Holtham1,2, Jessey George1,2
1Australian Centre for Plant Functional Genomics, Waite Research Institute, University of Adelaide, Adelaide, SA 5064, Australia.
Abstract:
Maximizing NO3- uptake during seedling development is important as it has a major influence on plant growth and yield. However, little is known about the processes leading to, and involved in, the initiation of root NO3- uptake capacity in developing seedlings. This study examines the physiological processes involved in root NO3- uptake and metabolism, to gain an understanding of how the NO3- uptake system responds to meet demand as maize seedlings transition from seed N use to external N capture. The concentrations of seed-derived free amino acids within root and shoot tissues are initially high, but decrease rapidly until stabilizing eight days after imbibition (DAI). Similarly, shoot N% decreases, but does not stabilize until 12-13 DAI. Following the decrease in free amino acid concentrations, root NO3- uptake capacity increases until shoot N% stabilizes. The increase in root NO3- uptake capacity corresponds with a rapid rise in transcript levels of putative NO3- transporters, ZmNRT2.1 and ZmNRT2.2. The processes underlying the increase in root NO3- uptake capacity to meet N demand provide an insight into the processes controlling N uptake.
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