首页> 美国卫生研究院文献>other >The Soybean Basic Helix-Loop-Helix Transcription Factor ORG3-Like Enhances Cadmium Tolerance via Increased Iron and Reduced Cadmium Uptake and Transport from Roots to Shoots
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The Soybean Basic Helix-Loop-Helix Transcription Factor ORG3-Like Enhances Cadmium Tolerance via Increased Iron and Reduced Cadmium Uptake and Transport from Roots to Shoots

机译:大豆基本螺旋-螺旋-螺旋转录因子ORG3-Like通过增加铁和减少镉的吸收以及从根到芽的转运来提高对镉的耐受性。

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摘要

Cadmium (Cd) is one of the most dangerous heavy metal pollutants in the environment and is toxic to animal and plant cells. On the other hand, iron (Fe) is an essential element for plant growth and development. The chlorosis of plant leaves under cadmium stress is similar to the typical symptom of iron deficiency. Recently, several Arabidopsis basic/helix-loop-helix (bHLH) transcription factors have been identified that are involved in the interactions between Cd and Fe. In the present study, over-expression the ORG3-like gene GmORG3, a bHLH transcription factor OBP3-responsive gene (ORG), enhanced Cd tolerance and stabilized Fe homeostasis. The domain analysis of GmORG3 showed that the protein contains a conserved 61-residue bHLH domain belonging to subfamily II. Moreover, subcellular localization experiments showed that GmORG3 is a nucleoprotein. GmORG3 was transcribed only in soybean roots and was significantly induced by external Cd stress in soybean plants. Heterologous expression of GmORG3 enhanced Cd tolerance in yeast. Furthermore, the overexpression of GmORG3 in soybean mosaic seedlings using a hairy root system showed that overexpressing plants increased the translocation ratio of Fe but reduced Cd translocation from the roots to shoots. In addition, the ectopic expression of GmORG3 in tobacco reduced phytotoxic effects induced by Cd stress and Fe deficiency, including the blockage of root elongation and decreased chlorophyll content. By integrating all these results, we found that GmORG3 plays an important role in response to Cd stress. The results provide new insights into the molecular mechanisms of Cd tolerance in soybean.
机译:镉(Cd)是环境中最危险的重金属污染物之一,对动植物细胞有毒。另一方面,铁(Fe)是植物生长发育的必需元素。镉胁迫下植物叶片的萎黄与铁缺乏的典型症状相似。最近,已经确定了几种拟南芥的基本/螺旋-环-螺旋(bHLH)转录因子,它们参与Cd和Fe之间的相互作用。在本研究中,过表达ORG3样基因GmORG3,bHLH转录因子OBP3响应基因(ORG)可以增强Cd耐受性并稳定Fe稳态。 GmORG3的结构域分析表明,该蛋白质包含一个属于亚家族II的保守的61残基bHLH结构域。此外,亚细胞定位实验表明GmORG3是一种核蛋白。 GmORG3仅在大豆根部转录,并由大豆植物中的外部Cd胁迫显着诱导。 GmORG3的异源表达增强了酵母对Cd的耐受性。此外,使用毛状根系统在大豆花叶幼苗中过表达GmORG3表明,过表达植物可增加Fe的转运比例,但减少Cd从根到芽的转运。此外,烟草中GmORG3的异位表达减少了Cd胁迫和铁缺乏引起的植物毒性作用,包括阻止根伸长和降低叶绿素含量。通过综合所有这些结果,我们发现GmORG3在响应Cd胁迫方面起着重要作用。结果为大豆对Cd耐受的分子机制提供了新的见解。

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