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首页> 外文期刊>Plant Biotechnology Reports >Glycine betaine: a versatile compound with great potential for gene pyramiding to improve crop plant performance against environmental stresses
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Glycine betaine: a versatile compound with great potential for gene pyramiding to improve crop plant performance against environmental stresses

机译:甘氨酸甜菜碱:一种多功能化合物,具有潜在的基因金字塔效应,可改善作物植物抗环境胁迫的性能

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摘要

Plants are frequently exposed to a plethora of environmental stresses. Being sessile creatures, they have to tolerate any stresses by altering their metabolism. To achieve tolerance, plants synthesize compatible compounds such as glycine betaine (GB). Continuous research over the years has increased our understanding about the mechanisms of stress protection by GB, which range from an osmolyte to a chaperone and from maintenance of reactive oxygen species to gene expression inducer. Various crop plants have also been transformed to synthesize GB along with model plants by introducing bacterial or plant genes. The GB-synthesizing crop plants exhibit enhanced tolerance to various abiotic stresses and out-yield wild-type plants in stressful conditions. GB has also been utilized to improve enhanced stress tolerance by utilizing it in gene stacking experiments due to its synergistic and stabilizing effects. It is reviewed here (along with comparative analysis of GB synthesis pathways and its mechanism to improve tolerance) showing that gene stacking by using GB as one component provides substantial protection. This synergistic role of GB leads us to hypothesize that it can be utilized in virtually any kind of gene stacking experiments to develop crop plants to be grown in arable and marginal lands for better tolerance to ever-changing environmental conditions and to ensure food security in underdeveloped regions of the world.
机译:植物经常受到过多的环境压力。作为固执生物,它们必须通过改变新陈代谢来承受任何压力。为了达到耐受性,植物必须合成兼容的化合物,例如甘氨酸甜菜碱(GB)。多年来的不断研究使我们对GB的应力保护机制有了更深入的了解,GB的作用范围从渗透液到分子伴侣,从维持活性氧到基因表达诱导剂。通过引入细菌或植物基因,已经将各种农作物与模型植物一起转化为合成GB。合成GB的农作物对各种非生物胁迫表现出增强的耐受性,并且在胁迫条件下表现出高产的野生型植物。由于其协同作用和稳定作用,GB还通过在基因堆叠实验中利用它来提高抗逆性。在此进行了综述(以及对GB合成途径及其提高耐受性的机制的比较分析),结果表明,使用GB作为一种组分的基因堆叠提供了实质性的保护。 GB的这种协同作用使我们假设它几乎可以用于任何类型的基因堆叠实验中,以在可耕种和边缘土地上种植农作物,以更好地适应不断变化的环境条件并确保欠发达地区的粮食安全世界各地。

著录项

  • 来源
    《Plant Biotechnology Reports》 |2013年第1期|49-57|共9页
  • 作者单位

    Green Bio Research Center Korea Research Institute of Bioscience and Biotechnology (KRIBB)">(1);

    Department of Environmental Sciences (Biotechnology Program) COMSATS Institute of Information Technology">(2);

    Green Bio Research Center Korea Research Institute of Bioscience and Biotechnology (KRIBB)">(1);

    Green Bio Research Center Korea Research Institute of Bioscience and Biotechnology (KRIBB)">(1);

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Environmental stresses; Gene pyramiding; Glycine betaine; Enhanced tolerance; Crop plants;

    机译:环境压力;基因金字塔甘氨酸甜菜碱;宽容;农作物;

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