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Analysis of amino acid metabolism in the ear of maize mutants deficient in two cytosolic glutamine synthetase isoenzymes highlights the importance of asparagine for nitrogen translocation within sink organs

机译:缺乏两种胞质谷氨酰胺合成酶同工酶的玉米突变体耳中氨基酸代谢的分析凸显了天冬酰胺对水槽器官内氮转运的重要性

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摘要

Nitrogen (N) metabolism was characterized in the developing ear of glutamine synthetase deficient mutants (gln1-3, gln1-4 and gln1-3/gln1-4) of maize exhibiting a reduction in kernel yield. During the grain-filling period, the metabolite contents, enzyme activities and steady-state levels of transcripts for marker genes of amino acid synthesis and interconversion were monitored in the cob and kernels. The ear of gln1-3 and gln1-3/gln1-4 had a higher free amino acid content and a lower C/N ratio, when compared to the wild type. The free ammonium concentrations were also much higher in gln1-3/gln1-4, and Asn accumulation was higher in gln1-3 and gln1-3/gln1-4. The level of transcripts of ZmAS3 and ZmAS4, two genes encoding asparagine synthetase, increased in the 'aborted kernels' of gln1-3 and gln1-3/gln1-4. The results show that N metabolism is clearly different in developing and 'aborted kernels'. The data support the hypothesis that N accumulated in 'aborted kernels' is remobilized via the cob to developing kernels using Asn as a transport molecule. The two genes ZmAS3 and ZmAS4 are likely to play an important role during this process.
机译:玉米中谷氨酰胺合成酶缺陷型突变体(gln1-3,gln1-4和gln1-3 / gln1-4)的发育中穗表现出氮(N)代谢,其籽粒产量降低。在籽粒灌浆期,对玉米芯和籽粒中氨基酸合成和互转换的标记基因的代谢物含量,酶活性和转录本的稳态水平进行了监测。与野生型相比,gln1-3和gln1-3 / gln1-4的耳朵具有较高的游离氨基酸含量和较低的C / N比。 gln1-3 / gln1-4中的游离铵浓度也高得多,而gln1-3和gln1-3 / gln1-4中的Asn积累较高。 ZmAS3和ZmAS4这两个编码天冬酰胺合成酶的基因的转录本水平在gln1-3和gln1-3 / gln1-4的“堕落谷粒”中增加。结果表明,氮代谢在发育和“流产的谷粒”中明显不同。数据支持这样一个假说,即使用Asn作为转运分子,通过“穗轴”将积累在“堕落的谷粒”中的N转移到发育中的谷粒上。 ZmAS3和ZmAS4这两个基因可能在此过程中起重要作用。

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