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拟南芥 ASN2 编码的天冬酰胺合成酶参与了营养生长过程中氮同化和输出的调控。

Arabidopsis thaliana ASN2 encoding asparagine synthetase is involved in the control of nitrogen assimilation and export during vegetative growth.

机构信息

INRA, UMR1318, Institut Jean-Pierre Bourgin, Département Adaptation des Plantes à l'Environnement, RD10, F-78000 Versailles, France.

出版信息

Plant Cell Environ. 2013 Feb;36(2):328-42. doi: 10.1111/j.1365-3040.2012.02576.x. Epub 2012 Aug 5.

Abstract

We investigated the function of ASN2, one of the three genes encoding asparagine synthetase (EC 6.3.5.4), which is the most highly expressed in vegetative leaves of Arabidopsis thaliana. Expression of ASN2 and parallel higher asparagine content in darkness suggest that leaf metabolism involves ASN2 for asparagine synthesis. In asn2-1 knockout and asn2-2 knockdown lines, ASN2 disruption caused a defective growth phenotype and ammonium accumulation. The asn2 mutant leaves displayed a depleted asparagine and an accumulation of alanine, GABA, pyruvate and fumarate, indicating an alanine formation from pyruvate through the GABA shunt to consume excess ammonium in the absence of asparagine synthesis. By contrast, asparagine did not contribute to photorespiratory nitrogen recycle as photosynthetic net CO(2) assimilation was not significantly different between lines under both 21 and 2% O(2). ASN2 was found in phloem companion cells by in situ hybridization and immunolocalization. Moreover, lack of asparagine in asn2 phloem sap and lowered (15) N flux to sinks, accompanied by the delayed yellowing (senescence) of asn2 leaves, in the absence of asparagine support a specific role of asparagine in phloem loading and nitrogen reallocation. We conclude that ASN2 is essential for nitrogen assimilation, distribution and remobilization (via the phloem) within the plant.

摘要

我们研究了编码天冬酰胺合成酶(EC 6.3.5.4)的三个基因之一 ASN2 的功能,该基因在拟南芥营养叶中表达水平最高。ASN2 的表达和在黑暗中平行升高的天冬酰胺含量表明,叶片代谢涉及 ASN2 进行天冬酰胺合成。在 asn2-1 敲除和 asn2-2 敲低系中,ASN2 缺失导致生长表型缺陷和铵积累。asn2 突变体叶片中天冬酰胺耗尽,丙氨酸、GABA、丙酮酸和富马酸积累,表明在没有天冬酰胺合成的情况下,丙氨酸通过 GABA 支路从丙酮酸形成以消耗过量的铵。相比之下,由于光合作用净 CO2 同化率在 21%和 2% O2 下两条系之间没有显著差异,天冬酰胺对光呼吸氮循环没有贡献。原位杂交和免疫定位发现 ASN2 存在于韧皮部伴胞中。此外,asn2 韧皮部汁液中缺乏天冬酰胺和降低(15)N 通量到汇,伴随着 asn2 叶片的变黄(衰老)延迟,缺乏天冬酰胺支持天冬酰胺在韧皮部装载和氮再分配中的特定作用。我们得出结论,ASN2 对植物体内氮的同化、分配和再动员(通过韧皮部)是必不可少的。

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