Excessive ammonium assimilation by plastidic glutamine synthetase causes ammonium toxicity in Arabidopsis thaliana

Archive ouverte

Hachiya, Takushi | Inaba, Jun | Wakazaki, Mayumi | Sato, Mayuko | Toyooka, Kiminori | Miyagi, Atsuko | Kawai-Yamada, Maki | Sugiura, Daisuke | Nakagawa, Tsuyoshi | Kiba, Takatoshi | Gojon, Alain | Sakakibara, Hitoshi

Edité par CCSD ; Nature Publishing Group -

International audience. Plants use nitrate, ammonium, and organic nitrogen in the soil as nitrogen sources. Since the elevated CO 2 environment predicted for the near future will reduce nitrate utilization by C 3 species, ammonium is attracting great interest. However, abundant ammonium nutrition impairs growth, i.e., ammonium toxicity, the primary cause of which remains to be determined. Here, we show that ammonium assimilation by GLUTAMINE SYNTHETASE 2 (GLN2) localized in the plastid rather than ammonium accumulation is a primary cause for toxicity, which challenges the textbook knowledge. With exposure to toxic levels of ammonium, the shoot GLN2 reaction produced an abundance of protons within cells, thereby elevating shoot acidity and stimulating expression of acidic stress-responsive genes. Application of an alkaline ammonia solution to the ammonium medium efficiently alleviated the ammonium toxicity with a concomitant reduction in shoot acidity. Consequently, we conclude that a primary cause of ammonium toxicity is acidic stress.

Suggestions

Du même auteur

Excessive assimilation of ammonium by plastidic glutamine synthetase is a major cause of ammonium toxicity in Arabidopsis thaliana

Archive ouverte | Hachiya, Takushi | CCSD

Plants use nitrate and ammonium in the soil as their main nitrogen sources. Recently, ammonium has attracted attention due to evidence suggesting that, in C3 species, an elevated CO2 environment inhibits nitrate assimilation. Howe...

Genetic and transcriptomic dissection of nitrate-independent function of Arabidopsis NRT1.1/NPF6.3/CHL1 under high ammonium condition

Archive ouverte | Hachiya, Takushi | CCSD

International audience. The Arabidopsis nitrate transceptor NRT1.1/NPF6.3/CHL1 regulates physiological responses to nitrate. Several studies have reported that Arabidopsis plants lacking NRT1.1 show enhanced shoot g...

Genetic and transcriptomic dissection of nitrate-independent function of Arabidopsis NRT1.1/NPF6.3/CHL1 under high ammonium condition

Archive ouverte | Hachiya, Takushi | CCSD

International audience. Abstract The Arabidopsis nitrate transceptor NRT1.1/NPF6.3/CHL1 regulates physiological responses to nitrate. Several studies have reported that Arabidopsis plants lacking NRT1.1 show enhance...

Chargement des enrichissements...