Affiliation:
1. Branch of the Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry of the Russian Academy of Sciences, 142290 Pushchino, Russia
2. Ufa Institute of Biology of the Ufa Federal Research Center of the Russian Academy of Sciences, 450054 Ufa, Russia
Abstract
Improving nitrogen use efficiency (NUE) is one of the main ways of increasing plant productivity through genetic engineering. The modification of nitrogen (N) metabolism can affect the hormonal content, but in transgenic plants, this aspect has not been sufficiently studied. Transgenic birch (Betula pubescens) plants with the pine glutamine synthetase gene GS1 were evaluated for hormone levels during rooting in vitro and budburst under outdoor conditions. In the shoots of the transgenic lines, the content of indoleacetic acid (IAA) was 1.5–3 times higher than in the wild type. The addition of phosphinothricin (PPT), a glutamine synthetase (GS) inhibitor, to the medium reduced the IAA content in transgenic plants, but it did not change in the control. In the roots of birch plants, PPT had the opposite effect. PPT decreased the content of free amino acids in the leaves of nontransgenic birch, but their content increased in GS-overexpressing plants. A three-year pot experiment with different N availability showed that the productivity of the transgenic birch line was significantly higher than in the control under N deficiency, but not excess, conditions. Nitrogen availability did not affect budburst in the spring of the fourth year; however, bud breaking in transgenic plants was delayed compared to the control. The IAA and abscisic acid (ABA) contents in the buds of birch plants at dormancy and budburst depended both on N availability and the transgenic status. These results enable a better understanding of the interaction between phytohormones and nutrients in woody plants.
Funder
Russian Science Foundation
Subject
Molecular Biology,Biochemistry
Reference70 articles.
1. Regulation of plant biomass production;Demura;Curr. Opin. Plant Biol.,2010
2. Enhancing C3 photosynthesis: An outlook on feasible interventions for crop improvement;Singh;Plant Biotechnol. J.,2014
3. Increasing photosynthesis: Unlikely solution for world food problem;Sinclair;Trends Plant Sci.,2019
4. Engineering nitrogen use efficient crop plants: The current status;McAllister;Plant Biotechnol. J.,2012
5. Lebedev, V.G., Popova, A.A., and Shestibratov, K.A. (2021). Genetic engineering and genome editing for improving nitrogen use efficiency in plants. Cells, 10.
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