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首页> 外文期刊>Theoretical and Applied Genetics: International Journal of Breeding Research and Cell Genetics >The panorama of physiological responses and gene expression of whole plant of maize inbred line YQ7-96 at the three-leaf stage under water deficit and re-watering.
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The panorama of physiological responses and gene expression of whole plant of maize inbred line YQ7-96 at the three-leaf stage under water deficit and re-watering.

机译:玉米自交系YQ7-96缺水复水三叶期的生理响应和基因表达全景。

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摘要

Changes in water potential, growth elongation, photosynthesis of three-leaf-old seedlings of maize inbred line YQ7-96 under water deficit (WD) for 0.5, 1 and 2 h and re-watering (RW) for 24 h were characterized. Gene expression was analyzed using cDNA microarray covering 11,855 maize unigenes. As for whole maize plant, the expression of WD-regulated genes was characterized by up-regulation. The expression of WD-regulated genes was categorized into eight different patterns, respectively, in leaves and roots. Newly found and WD-affected cellular processes were metabolic process, amino acid and derivative metabolic process and cell death. A great number of the analyzed genes were found to be regulated specifically by RW and commonly by both WD and RW, respectively, in leaves. It is therefore concluded that (1) whole maize plant tolerance to WD, as well as growth recovery from WD, depends at least in part on transcriptional coordination between leaves and roots; (2) WD exerts effects on the maize, especially on basal metabolism; (3) WD could probably affect CO2 uptake and partitioning, and transport of fixed carbons; (4) WD could likely influence nuclear activity and genome stability; and (5) maize growth recovery from WD is likely involved in some specific signaling pathways related to RW-specific responsive genes.
机译:表征了玉米自交系YQ7-96在缺水(WD)0.5、1和2h和复水(RW)24h条件下的水势,生长伸长,光合作用的变化。使用覆盖11,855个玉米单基因的cDNA微阵列分析了基因表达。对于整个玉米植株,WD调控基因的表达以上调为特征。 WD调控基因的表达分别在叶和根中分为八种不同的模式。新发现和受WD影响的细胞过程是代谢过程,氨基酸及其衍生代谢过程和细胞死亡。发现大量分析的基因分别在叶片中受RW的特异性调控,并且通常受WD和RW共同调控。因此得出以下结论:(1)整个玉米植物对WD的耐受性以及WD的生长恢复至少部分取决于叶和根之间的转录协调; (2)WD对玉米特别是基础代谢产生影响; (3)WD可能影响CO 2 的吸收和分配以及固定碳的运输; (4)WD可能影响核活性和基因组稳定性; (5)WD的玉米生长恢复可能参与了一些与RW特异性反应基因相关的特定信号传导途径。

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