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首页> 外文期刊>Plant Science: An International Journal of Experimental Plant Biology >The maize bHLH transcription factor bHLH105 confers manganese tolerance in transgenic tobacco
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The maize bHLH transcription factor bHLH105 confers manganese tolerance in transgenic tobacco

机译:玉米BHLH转录因子BHLH105赋予转基因烟草中的锰耐受性

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Manganese (Mn) toxicity is an important limiting factor for crop production in acidic soils. The basic helix-loop helix (bHLH) transcription factors are involved in a variety of physiological processes. However, whether the bHLHs are involved in excess Mn stress response is largely unknown. Here, we report the functional characterization of ZmbHLH105 isolated from maize (Zea mays). The transcript levels of ZmbHLH105 were higher in leaves, and were markedly up-regulated under excess Mn stress in maize. ZmbHLH105 was localized in the nucleus with transactivation activity. Ectopic expression of ZmbHLH105 enhanced Mn tolerance in Saccharomyces cerevisiae cells. ZmbHLH105-overexpressing (OE) plants showed improved excess Mn tolerance in transgenic tobacco. The stress-tolerant phenotypes of these OE tobacco lines were accompanied by increases of key antioxidant enzyme activities, but decreases of reactive oxygen species (ROS) accumulations. Importantly, the OE plants had less increases than the wild-type in toxic Mn accumulation. Moreover, the transcript levels of Mn/Fe-related transporters in the OE lines displayed remarkable decreases compared with the wild-type under Mn stress, suggesting that ZmbHLH105 reduced Mn accumulation in plants largely by repressing expression of Mn/Fe-regulated transporter genes. Taken together, these results indicate that ZmbHLH105 confers improved Mn stress tolerance possibly by regulating antioxidant machinery-mediated ROS scavenging and expression of Mn/Fe-related transporters in plants. ZmbHLH105 could be exploited for developing drought-tolerant maize varieties.
机译:锰(Mn)毒性是酸性土壤中作物生产的重要限制因素。基本螺旋环螺旋(BHLH)转录因子涉及各种生理过程。但是,BHLH是否参与过多的Mn应激响应在很大程度上是未知的。在这里,我们报告了玉米(Zea Mays)中分离的ZMBHLH105的功能表征。叶片的转录物水平较高,在玉米中的过量Mn应力下明显上调。 ZMBHLH105在具有转移活性的细胞核中定位。 ZMBHLH105的异位表达增强酿酒酵母细胞中的Mn耐受性。 ZMBHLH105-过度抑制(OE)植物在转基因烟草中显示出改善过量的MN耐受性。这些OE烟草系的应力耐受性表型伴随着关键抗氧化酶活性的增加,但是反应性氧(ROS)积聚的降低。重要的是,OE植物的增加比有毒MN积累的野生型较少。此外,与Mn应激下的野生型相比,OE线中的Mn / Fe相关转运蛋白的转录水平显着降低,表明ZMBHLH105通过抑制Mn / Fe调控基因的表达,ZMBHLH105在植物中减少了Mn积累。总之,这些结果表明,通过调节抗氧化机械介导的ROS清除和植物中的Mn / Fe相关转运蛋白的表达,ZMBHLH105赋予了改善的Mn应力耐受性。可以利用ZMBHLH105来开发耐旱玉米品种。

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