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Functional Research on Three Presumed Asparagine Synthetase Family Members in Poplar

机译:杨树中三个推测的天冬酰胺合成酶家族成员的功能研究

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摘要

Asparagine synthetase (AS), a key enzyme in plant nitrogen metabolism, plays an important role in plant nitrogen assimilation and distribution. Asparagine (Asn), the product of asparagine synthetase, is one of the main compounds responsible for organic nitrogen transport and storage in plants. In this study, we performed complementation experiments using an Asn-deficient Escherichia coli strain to demonstrate that three putative asparagine synthetase family members in poplar (Populus simonii × P. nigra) function in Asn synthesis. Quantitative real-time PCR revealed that the three members had high expression levels in different tissues of poplar and were regulated by exogenous nitrogen. PnAS1 and PnAS2 were also affected by diurnal rhythm. Long-term dark treatment resulted in a significant increase in PnAS1 and PnAS3 expression levels. Under long-term light conditions, however, PnAS2 expression decreased significantly in the intermediate region of leaves. Exogenous application of ammonium nitrogen, glutamine, and a glutamine synthetase inhibitor revealed that PnAS3 was more sensitive to exogenous glutamine, while PnAS1 and PnAS2 were more susceptible to exogenous ammonium nitrogen. Our results suggest that the various members of the PnAS gene family have distinct roles in different tissues and are regulated in different ways.
机译:天冬酰胺合成酶(AS)是植物氮代谢中的关键酶,在植物氮同化和分配中起着重要作用。天冬酰胺合成酶的产物天冬酰胺(Asn)是负责植物体内有机氮运输和储存的主要化合物之一。在这项研究中,我们使用Asn缺陷型大肠杆菌菌株进行了互补实验,以证明杨树中的三个推定的天冬酰胺合成酶家族成员(Populus simonii×P. nigra)在Asn合成中起作用。实时定量PCR分析显示,这三个成员在杨树的不同组织中具有高表达水平,并受外源氮的调节。 PnAS1和PnAS2也受到昼夜节律的影响。长期的黑暗治疗导致PnAS1和PnAS3表达水平显着增加。然而,在长期光照条件下,PnAS2在叶片中间区域的表达显着下降。外源施用铵态氮,谷氨酰胺和谷氨酰胺合成酶抑制剂表明,PnAS3对外源性谷氨酰胺更敏感,而PnAS1和PnAS2对外源性铵态氮更敏感。我们的结果表明,PnAS基因家族的各个成员在不同的组织中具有不同的作用,并以不同的方式受到调控。

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