Abstract Nitrate (N) response is modulated by light, but not understood from a genome-wide perspective. Comparative transcriptomic analyses of nitrate response in light-grown and etiolated rice leaves revealed 303 and 249 differentially expressed genes (DEGs) respectively. A majority of them were exclusive to light (270) or dark (216) condition, whereas 33 DEGs were common. The latter may constitute response to N signaling regardless of light. Functional annotation and pathway enrichment analyses of the DEGs showed that nitrate primarily modulates conserved N signaling and metabolism in light, whereas oxidation–reduction processes, pentose-phosphate shunt, starch-, sucrose- and glycerolipid-metabolisms in the dark. Differential N-regulation...
The indiscriminate use of nitrogenous fertilizers continues unabated for commercial crop production,...
The genomic response to low levels of nitrate was studied in Arabidopsis using the Affymetrix ATH1 c...
Understanding how nutrients affect gene expression will help us to understand the mechanisms control...
Ammonium has long been used as the predominant form of nitrogen source for paddy rice (Oryza sativa)...
Nitrogen (N) is an extremely important macronutrient for plant growth and development. It is the mai...
Rice cultivar "Weiyou916" (Oryza sativa L. ssp. Indica) were cultured with control (10 mM NO3-) and ...
Nitrogen (N) is an important nutrient and signal for plant growth and development. However, to date,...
The nitrogen use efficiency (NUE) of crop plants is limited and enhancing it in rice, a major cereal...
Crop productivity depends on nitrogen fertilization, but plants take up only an average of 30–50% of...
Nitrogen (N) is an essential nutrient for plant growth and development. The root system architecture...
Plants take up the nitrogen necessary for their growth mainly in the form of nitrate. To cope with s...
We have explored the possible involvement of the phosphoinositide (PI) cycle and protein kinase C (P...
Nitrate commands genome-wide gene expression changes that impact metabolism, physiology, plant growt...
The genomic response to low levels of nitrate was studied in Arabidopsis using the Affymetrix ATH1 c...
Nitrogenous inorganic compounds impact plants as nutrients, signals and toxins. We are dissecting a ...
The indiscriminate use of nitrogenous fertilizers continues unabated for commercial crop production,...
The genomic response to low levels of nitrate was studied in Arabidopsis using the Affymetrix ATH1 c...
Understanding how nutrients affect gene expression will help us to understand the mechanisms control...
Ammonium has long been used as the predominant form of nitrogen source for paddy rice (Oryza sativa)...
Nitrogen (N) is an extremely important macronutrient for plant growth and development. It is the mai...
Rice cultivar "Weiyou916" (Oryza sativa L. ssp. Indica) were cultured with control (10 mM NO3-) and ...
Nitrogen (N) is an important nutrient and signal for plant growth and development. However, to date,...
The nitrogen use efficiency (NUE) of crop plants is limited and enhancing it in rice, a major cereal...
Crop productivity depends on nitrogen fertilization, but plants take up only an average of 30–50% of...
Nitrogen (N) is an essential nutrient for plant growth and development. The root system architecture...
Plants take up the nitrogen necessary for their growth mainly in the form of nitrate. To cope with s...
We have explored the possible involvement of the phosphoinositide (PI) cycle and protein kinase C (P...
Nitrate commands genome-wide gene expression changes that impact metabolism, physiology, plant growt...
The genomic response to low levels of nitrate was studied in Arabidopsis using the Affymetrix ATH1 c...
Nitrogenous inorganic compounds impact plants as nutrients, signals and toxins. We are dissecting a ...
The indiscriminate use of nitrogenous fertilizers continues unabated for commercial crop production,...
The genomic response to low levels of nitrate was studied in Arabidopsis using the Affymetrix ATH1 c...
Understanding how nutrients affect gene expression will help us to understand the mechanisms control...