首页> 美国卫生研究院文献>PLoS Clinical Trials >Regulation of antioxidant mechanisms by AtDREB1A improves soil-moisture deficit stress tolerance in transgenic peanut (Arachis hypogaea L.)
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Regulation of antioxidant mechanisms by AtDREB1A improves soil-moisture deficit stress tolerance in transgenic peanut (Arachis hypogaea L.)

机译:AtDREB1A调节抗氧化机制可提高转基因花生(Arachis hypogaea L.)的土壤水分亏缺胁迫耐受性

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摘要

The present study evaluated the soil-moisture deficit stress tolerance of AtDREB1A transgenic peanut lines during reproductive stages using lysimetric system under controlled glasshouse conditions. The antioxidant activities of AtDREB1A transgenic lines were measured by biochemical assays. The transgenic peanut lines recorded significantly lower accumulation of malondialdehyde and hydrogen peroxide than the wild-type. Whereas, specific activity of catalase, guaiacol peroxidase, ascorbate peroxidase, glutathione reductase and ascorbic acid were found to be significantly higher in transgenic lines than in the wild-type line under drought stress. The results showed that the transgenic lines expressed lower oxidative damage than wild-type and could protect themselves from the elevated levels of reactive oxygen species under drought stress. This could be attributed to the regulation of various stress-inducible genes by AtDREB1A transcription factor. Improved photosynthetic and growth parameters were also recorded in transgenic lines over wild-type under drought stress. Improved physio-biochemical mechanisms in transgenic peanut lines might have resulted in improved growth-related traits as significant correlations were observed between physio-biochemical parameters and growth-related traits under drought stress. The potential target genes of AtDREB1A transcription factor in transgenic peanut lines during drought stress were identified, which helped in understanding the molecular mechanisms of DREB-regulated stress responses. The transgenic line D6 reported the best physio-biochemical mechanisms and growth-related parameters under drought stress over other transgenic lines and wild-type, suggesting it may be used to develop high yielding and terminal drought-tolerant peanut varieties.
机译:本研究使用受控系统在温室条件下,通过等剂量系统评估了AtDREB1A转基因花生品系在繁殖期的土壤水分亏缺胁迫耐受性。通过生化分析测量AtDREB1A转基因株系的抗氧化活性。转基因花生品系记录的丙二醛和过氧化氢的积累明显低于野生型。而在干旱胁迫下,过氧化氢酶,愈创木酚过氧化物酶,抗坏血酸过氧化物酶,谷胱甘肽还原酶和抗坏血酸的比活性在转基因品系中显着高于野生型品系。结果表明,转基因品系的氧化损伤程度低于野生型,并且可以保护自己免受干旱胁迫下活性氧水平的升高。这可能归因于AtDREB1A转录因子对各种应激诱导基因的调控。在干旱胁迫下,在野生型转基因品系中也记录到改善的光合作用和生长参数。转基因花生品系中改善的生理生化机制可能导致生长相关性状得到改善,因为在干旱胁迫下观察到生理生化参数与生长相关性状之间存在显着相关性。鉴定了干旱胁迫下转基因花生品系中AtDREB1A转录因子的潜在靶基因,这有助于了解DREB调控胁迫响应的分子机制。在干旱胁迫下,转基因品系D6表现出最佳的生理生化机制和与生长相关的参数,优于其他转基因品系和野生型,这表明它可用于开发高产和终端耐旱的花生品种。

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