木质部
硝酸还原酶
硝酸盐
氮同化
代谢物
氨基酸
谷氨酰胺合成酶
亚硝酸盐还原酶
生物化学
化学
龙葵
同化(音韵学)
亚硝酸盐
新陈代谢
初级代谢物
韧皮部
酶
谷氨酰胺
植物
生物
有机化学
哲学
语言学
作者
Jwakyung Sung,Su‐Yeon Lee,Yejin Lee,Rogyoung Kim,Ju-Young Lee,Jong‐Sik Lee,Yong Sik Ok
出处
期刊:Han-guk toyang biryo hakoeji
[Korean Society of Soil Science and Fertilizer]
日期:2012-12-31
卷期号:45 (6): 910-919
被引量:1
标识
DOI:10.7745/kjssf.2012.45.6.910
摘要
The role of inorganic nitrogen assimilation in the production of amino acids, organic acids and soluble sugars is one of the most important biochemical processes in plants, and, in order to achieve normally, nitrate uptake and assimilation is essential. For this reason, the characterization of nitrate assimilation and metabolite composition from leaves, roots and xylem sap of tomato (Solanum lycopersicum) was investigated under different nitrate levels in media. Tomato plants were grown hydroponically in liquid culture under five different nitrate regimes: deficient (0.25 and 0.75 mM $NO_3{^-}$), normal (2.5 mM $NO_3{^-}$) and excessive (5.0 and 10.0 mM $NO_3{^-}$). All samples, leaves, roots and xylem sap, were collected after 7 and 14 days after treatment. The levels of amino acids, soluble sugars and organic acids were significantly decreased by N-deficiency whereas, interestingly, they remained higher in xylem sap as compared with N-normal and -surplus. The N-excessive condition did not exert any significant changes in metabolites composition, and thus their levels were similar with N-normal. The gene expression and enzyme activity of nitrate reductase (NR), nitrite reductase (NIR) and glutamine synthetase (GS) were greatly influenced by nitrate. The data presented here suggest that metabolites, as a signal messenger, existed in xylem sap seem to play a crucial role to acquire nitrate, and, in addition, an increase in ${\alpha}$-ketoglutarate pathway-derived amino acids under N-deficiency may help to better understand plant C/N metabolism.
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