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Ectopic Expression of Glycine maxGmNAC109 Enhances Drought Tolerance and ABA Sensitivity in Arabidopsis

机译:最大甘氨酸的异位表达GmNAC109增强拟南芥的耐旱性和ABA敏感性

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摘要

The NAC (NAM, ATAF1/2, CUC2) transcription factors are widely known for their various functions in plant development and stress tolerance. Previous studies have demonstrated that genetic engineering can be applied to enhance drought tolerance via overexpression/ectopic expression of genes. In the present study, the dehydration- and drought-inducible from was ectopically expressed in ( EX) plants to study its biological functions in mediating plant adaptation to water deficit conditions. Results revealed an improved drought tolerance in the transgenic plants, which displayed greater recovery rates by 20% to 54% than did the wild-type plants. In support of this finding, -EX plants exhibited lower water loss rates and decreased endogenous hydrogen peroxide production in leaf tissues under drought, as well as higher sensitivity to exogenous abscisic acid (ABA) treatment at germination and early seedling development stages. In addition, analyses of antioxidant enzymes indicated that EX plants possessed stronger activities of superoxide dismutase and catalase under drought stress. These results together demonstrated that GmNAC109 acts as a positive transcriptional regulator in the ABA-signaling pathway, enabling plants to cope with adverse water deficit conditions.
机译:NAC(NAM,ATAF1 / 2,CUC2)转录因子因其在植物发育和胁迫耐受性方面的多种功能而广为人知。先前的研究表明,基因工程可以通过基因的过表达/异位表达来增强抗旱性。在本研究中,脱水诱导和干旱诱导的异位在(EX)植物中异位表达,以研究其在介导植物适应缺水条件中的生物学功能。结果表明,转基因植物的抗旱性有所提高,与野生型植物相比,其恢复率提高了20%至54%。为支持这一发现,-EX植物表现出较低的失水率和干旱条件下叶片组织中内源性过氧化氢的产生,以及在萌芽和幼苗早期对外源脱落酸(ABA)处理的敏感性更高。此外,抗氧化酶的分析表明,EX植物在干旱胁迫下具有较强的超氧化物歧化酶和过氧化氢酶活性。这些结果共同证明,GmNAC109在ABA信号通路中起正转录调节剂的作用,使植物能够应对不利的缺水条件。

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