盐胁迫对高亲和钾转运体(HKT)基因K+/Na+稳态、渗透调节和表达谱的影响

IF 2.5 3区 生物学 Q3 CELL BIOLOGY
Nour Fathalli, Imene Rajhi, Rim Jouini, Ghassen Abid, Samiha Mejri, Abdelwahed Ghorbel, Robert K Jansen, Rim Nefissi Ouertani
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引用次数: 0

摘要

盐胁迫是影响作物产量的主要威胁之一。为了探讨大麦耐盐性的生理和分子机制,研究了3种大麦基因型Ardhaoui、Manel和Testour在200 mM NaCl胁迫下的行为。结果表明,盐胁迫显著降低了植物的生长和持水能力,特别是在盐敏感基因型Testour中。组织离子含量评估显示明显不同的盐诱导反应。耐盐基因型Ardhaoui在叶片和根系中积累的K+含量高于其他两种基因型,而Na+含量低于其他两种基因型,导致K+/Na+比值升高。此外,与Manel和Testour相比,Ardhaoui基因型表现出更强的K+到叶片的选择性转运能力。这种效果是由于HvHKT表达调节的K +保留和Na +排除增强所致。事实上,在阿达乌伊基因型的叶片和根中都检测到较高的HvHKT2;1基因转录丰度,并且HvHKT1;1和HvHKT1表达上调,主要在阿达乌伊根中。鉴于盐度对植物发育的严重影响,这些发现可以应用于植物耐盐性的遗传改良。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of salt stress on K+/Na+ homeostasis, osmotic adjustment, and expression profiles of high-affinity potassium transporter (HKT) genes.

Salt stress is one of the major threats affecting crop yield. We assessed the behaviour of three barley genotypes, Ardhaoui, Manel, and Testour under 200 mM NaCl with the aim of evaluating the physiological and molecular mechanisms involved in barley salinity tolerance. Results revealed that salinity stress significantly decreases plant growth and water-holding capacity, particularly in the salt-sensitive genotype Testour. Tissue ionic content assessment demonstrated significantly distinct salinity-induced responses. The salt-tolerant genotype Ardhaoui accumulated more K+ and less Na+ content in both leaves and roots compared with the two other genotypes, leading to an increased K+/Na+ ratio. Furthermore, the genotype Ardhaoui exhibited a stronger selectivity transport capacity of K+ over Na+ from root to leaf compared to both Manel and Testour. This effect was due to enhanced K⁺ retention and Na⁺ exclusion, regulated by HvHKT expression. Indeed, higher HvHKT2;1 gene transcript abundance was detected in both leaves and roots of the Ardhaoui genotype, as well as an upregulation of HvHKT1;1 and HvHKT1, mainly in Ardhaoui roots. In view of the severe impact of salinity on plant development, these findings could be applied to the genetic improvement of plant salinity tolerance.

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来源期刊
Protoplasma
Protoplasma 生物-细胞生物学
CiteScore
6.60
自引率
6.90%
发文量
99
审稿时长
4-8 weeks
期刊介绍: Protoplasma publishes original papers, short communications and review articles which are of interest to cell biology in all its scientific and applied aspects. We seek contributions dealing with plants and animals but also prokaryotes, protists and fungi, from the following fields: cell biology of both single and multicellular organisms molecular cytology the cell cycle membrane biology including biogenesis, dynamics, energetics and electrophysiology inter- and intracellular transport the cytoskeleton organelles experimental and quantitative ultrastructure cyto- and histochemistry Further, conceptual contributions such as new models or discoveries at the cutting edge of cell biology research will be published under the headings "New Ideas in Cell Biology".
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