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首页> 外文期刊>The New Phytologist >A seed high-lysine trait is negatively associated with the TCA cycle and slows down Arabidopsis seed germination.
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A seed high-lysine trait is negatively associated with the TCA cycle and slows down Arabidopsis seed germination.

机译:种子的高赖氨酸性状与TCA周期负相关,并减慢了拟南芥种子的发芽速度。

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摘要

Lysine is a nutritionally important essential amino acid, but significant elevation of its levels in Arabidopsis seeds, by enhancing its synthesis and blocking its catabolism, causes a retardation of germination. Here, we hypothesized that this negative effect is associated with changes in primary metabolism and gene expression programs that are essential for early germination. Seeds at different stages of germination sensu stricto of the seed-high-lysine genotype were subjected to detailed analysis of primary metabolism, using GC-MS, as well as microarray analysis and two-dimensional, isoelectric focusing, sodium dodecylsulfate polyacrylamide gel electrophoresis, to detect storage protein mobilization. Our results exposed a major negative effect of the seed-specific increased lysine synthesis and knockout of its catabolism on the levels of a number of TCA cycle metabolites. This metabolic alteration also influences significantly the transcriptome, primarily attenuating the boost of specific transcriptional programs that are essential for seedling establishment, such as the onset of photosynthesis, as well as the turnover of specific transcriptional programs associated with seed embryonic traits. Our results indicate that catabolism of the aspartic acid family of amino acids is an important contributor to the energy status of plants, and hence to the onset of autotrophic growth-associated processes during germination.
机译:赖氨酸是营养上重要的必需氨基酸,但通过增强其合成和阻断其分解代谢,其在拟南芥种子中的含量显着升高,导致发芽延迟。在这里,我们假设这种负面影响与早期发芽必不可少的初级代谢和基因表达程序的变化有关。使用GC-MS对种子-高赖氨酸基因型发芽不同阶段的种子进行详细的一次代谢分析,并进行微阵列分析和二维等电聚焦,十二烷基硫酸钠聚丙烯酰胺凝胶电泳,以检测贮藏蛋白的动员情况。我们的结果暴露了赖氨酸合成的种子特异性增加和其分解代谢的敲除对许多TCA循环代谢产物水平的重大负面影响。这种代谢变化也会显着影响转录组,主要减弱幼苗建立所必需的特定转录程序的增强,例如光合作用的开始以及与种子胚胎性状相关的特定转录程序的更新。我们的结果表明,天冬氨酸家族的氨基酸分解代谢是植物能量状态的重要贡献者,因此是发芽过程中自养生长相关过程的开始。

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