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Nitrogen assimilation in alfalfa: isolation and characterization of an asparagine synthetase gene showing enhanced expression in root nodules and dark-adapted leaves.

L Shi, S N Twary, H Yoshioka, R G Gregerson, S S Miller, D A Samac, J S Gantt, P J Unkefer, C P Vance
L Shi
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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S N Twary
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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H Yoshioka
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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R G Gregerson
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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S S Miller
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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D A Samac
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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J S Gantt
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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P J Unkefer
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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C P Vance
U.S. Department of Agnculture, Agricultural Research Service, University of Minnesota, St. Paul 55108, USA.
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Published August 1997. DOI: https://doi.org/10.1105/tpc.9.8.1339

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  • Copyright © 1997 by American Society of Plant Biologists

Abstract

Asparagine, the primary assimilation product from N2 fixation in temperate legumes and the predominant nitrogen transport product in many plant species, is synthesized via asparagine synthetase (AS; EC 6.3.5.4). Here, we report the isolation and characterization of a cDNA and a gene encoding the nodule-enhanced form of AS from alfalfa. The AS gene is comprised of 13 exons separated by 12 introns. The 5' flanking region of the AS gene confers nodule-enhanced reporter gene activity in transformed alfalfa. This region also confers enhanced reporter gene activity in dark-treated leaves. These results indicate that the 5' upstream region of the AS gene contains elements that affect expression in root nodules and leaves. Both AS mRNA and enzyme activity increased approximately 10- to 20-fold during the development of effective nodules. Ineffective nodules have strikingly reduced amounts of AS transcript. Alfalfa leaves have quite low levels of AS mRNA and protein; however, exposure to darkness resulted in a considerable increase in both. In situ hybridization with effective nodules and beta-glucuronidase staining of nodules from transgenic plants showed that AS is expressed in both infected and uninfected cells of the nodule symbiotic zone and in the nodule parenchyma. RNA gel blot analysis and in situ hybridization results are consistent with the hypothesis that initial AS expression in nodules is independent of nitrogenase activity.

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Nitrogen assimilation in alfalfa: isolation and characterization of an asparagine synthetase gene showing enhanced expression in root nodules and dark-adapted leaves.
L Shi, S N Twary, H Yoshioka, R G Gregerson, S S Miller, D A Samac, J S Gantt, P J Unkefer, C P Vance
The Plant Cell Aug 1997, 9 (8) 1339-1356; DOI: 10.1105/tpc.9.8.1339

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Nitrogen assimilation in alfalfa: isolation and characterization of an asparagine synthetase gene showing enhanced expression in root nodules and dark-adapted leaves.
L Shi, S N Twary, H Yoshioka, R G Gregerson, S S Miller, D A Samac, J S Gantt, P J Unkefer, C P Vance
The Plant Cell Aug 1997, 9 (8) 1339-1356; DOI: 10.1105/tpc.9.8.1339
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Vol. 9, Issue 8
Aug 1997
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