Anaerobic nitrate and ammonium metabolism in flood-tolerant rice coleoptiles

被引:78
作者
Fan, TWM
Higashi, RM
Frenkiel, TA
Lane, AN
机构
[1] UNIV CALIF DAVIS,CROCKER NUCL LAB,DAVIS,CA 95616
[2] NATL INST MED RES,MRC,BIOMED NMR CTR,LONDON NW7 1AA,ENGLAND
[3] NATL INST MED RES,DIV MOL STRUCT,LONDON NW7 1AA,ENGLAND
关键词
N-15; tracer; nitrate metabolism; ammonium assimilation; anaerobiosis; rice;
D O I
10.1093/jexbot/48.314.1655
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The tolerance of germinating rice seedlings to anaerobiosis cannot be fully accounted for by ethanolic fermentation alone. Nitrate metabolism (nitrate reduction to NH4+ plus its subsequent assimilation) may provide an additional sink mechanism for excess protons and NADH produced during anaerobiosis. To follow the fate of nitrate, N-15-labelled nitrate and ammonium incorporation in aerobic and anaerobic rice coleoptiles was examined using N-15-edited H-1 NMR and gas chromatography-mass spectrometry methods. After 22 h of treatments, protein-free Ala, Glu, Gin, and gamma-aminobutyrate were the main N-15-labelled products for both nitrate and ammonium-treated anaerobic rice coleoptiles, with Gin, Glu, and Ala being the most enriched, The total amount of N-15 label incorporation into Ala and GAB increased significantly in response to anaerobiosis, The N-15-labelling pattern of Glu and Gin suggests that the GS/GOGAT system was primarily involved in ammonium assimilation whereas Glu dehydrogenase may play a role in nitrate assimilation. N-15 incorporation into protein-derived amino acids was also significant and was more substantial in anaerobic than in aerobic rice coleoptiles, which indicate that protein biosynthesis remained active in anaerobic rice coleoptiles, Thus, anaerobic assimilation of inorganic N into amino acids, particularly Ala and Glu/GAB, may serve to supplement ethanolic fermentation in sustaining glycolysis and energy production in rice coleoptiles.
引用
收藏
页码:1655 / 1666
页数:12
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