Electron donation from ascorbic acid to nitrite reductase via ferredoxin in a reconstituted system
Author:
Publisher
Springer Science and Business Media LLC
Subject
Horticulture,Plant Science,Biotechnology
Link
http://link.springer.com/content/pdf/10.1007/s13580-012-0093-4.pdf
Reference15 articles.
1. Campbell, W.H. 1996. Nitrate reductase biochemistry comes of age. Plant Physiol. 111:355–361.
2. Davey, M.W., M. van Montagu, D. Inze, M. Sanmarthin, A. Kanellis, N. Smirnoff, I.J. Benzie, J. Strain, D. Favell, and J. Fletcher. 2000. Plant L-ascrobic acid: Chemistry, function, metabolism, bioavailability and effects of processing. J. Sci. Food Agric. 80:825–860.
3. Dose, M.M., M. Hirasawa, S. Kleis-SanFrancisco, E.L. Lew, and D.B. Knaff. 1997. The ferredoxin-binding site of ferredoxin: nitrite oxidoreductase: differential chemical modification of the free enzyme and its complex with ferredoxin. Plant Physiol. 114:1047–1053.
4. Foyer, C.H., J. Rowell, and D. Walker. 1983. Measurement of ascorbate content of spinach leaves protoplasts and chloroplasts during illumination. Planta 157:239–244.
5. Fukuyama, K. 2004. Structure and function of plant-type ferredoxins. Photosynthesis Res. 81:289–301
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1. Enhancement of dissimilatory nitrate/nitrite reduction to ammonium of Escherichia coli sp. SZQ1 by ascorbic acid: Mechanism and performance;Science of The Total Environment;2022-12
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