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在严重盐胁迫下,硬粒小麦TdHKT1;4-1的异源表达部分互补了拟南芥中的突变体athkt1。

Heterologous expression of the durum wheat TdHKT1;4-1 partially complements the mutant athkt1 in Arabidopsis thaliana under severe salt stress.

作者信息

Amar Siwar Ben, Brini Faiçal, Masmoudi Khaled

机构信息

Centre of Biotechnology of Sfax (CBS), Laboratory of Biotechnology and Plant Improvement, B.P "1177" 3018, Sfax, Tunisia.

Integrative Agriculture Department, College of Agriculture and Veterinary Medicine, United Arab Emirates University, P.O. Box 15551, Al Ain, United Arab Emirates.

出版信息

Protoplasma. 2025 Mar;262(2):397-413. doi: 10.1007/s00709-024-02006-0. Epub 2024 Nov 5.

Abstract

High-affinity K (HKT) transporters which mediate Na-specific transport or Na-K co-transport play a key role in plant salt tolerance. In our previous functional study in Xenopus oocytes, we demonstrated that the durum wheat TdHKT1;4-1 acts as a Na-selective transporter. Here, we investigated the function of TdHKT1;4-1 and its contribution in salt stress tolerance in the Arabidopsis athkt1 mutant background. Our results revealed that TdHKT1;4-1 partially complements the salt sensitivity phenotype of the athkt1 transgenic lines. Comparative physiological analyses and oxidative stress status under moderate salt stress (50 mM NaCl) showed that both transgenic lines SH3 and SH5 restored the salt stress tolerance comparable to the level observed in Wt plants. Whereas, under severe salt stress treatment (100 mM NaCl), the athkt1 transgenic lines exhibited an intermediate salt stress tolerance between Wt and athkt1 mutant. Moreover, TdHKT1;4-1 was highly expressed in leaves under moderate and severe salt stress, while in roots, it was largely expressed only under severe salt stress. In addition, antioxidant enzymes such as catalase (CAT), peroxidase (POD), and superoxide dismutase (SOD) were significantly expressed in SH3 and SH5 lines compared to athkt1 and Wt under moderate stress. Therefore, TdHKT1;4-1 seems to differ from its Arabidopsis homologous counterpart, as it contributes to salt stress tolerance up to a specific threshold, above which the TdHKT1;4-1 expression may lead to higher root Na influx, hence increasing its toxicity during salt stress.

摘要

介导钠特异性转运或钠钾共转运的高亲和力钾(HKT)转运蛋白在植物耐盐性中起关键作用。在我们之前对非洲爪蟾卵母细胞的功能研究中,我们证明了硬粒小麦TdHKT1;4-1作为一种钠选择性转运蛋白。在这里,我们研究了TdHKT1;4-1的功能及其在拟南芥athkt1突变体背景下对盐胁迫耐受性的贡献。我们的结果表明,TdHKT1;4-1部分弥补了athkt1转基因系的盐敏感表型。在中度盐胁迫(50 mM NaCl)下的比较生理分析和氧化应激状态表明,转基因系SH3和SH5恢复的盐胁迫耐受性与野生型植物中观察到的水平相当。然而,在重度盐胁迫处理(100 mM NaCl)下,athkt1转基因系表现出介于野生型和athkt1突变体之间的中度盐胁迫耐受性。此外,TdHKT1;4-1在中度和重度盐胁迫下在叶片中高度表达,而在根中,它仅在重度盐胁迫下大量表达。此外,与中度胁迫下的athkt1和野生型相比,抗氧化酶如过氧化氢酶(CAT)、过氧化物酶(POD)和超氧化物歧化酶(SOD)在SH3和SH5系中显著表达。因此,TdHKT1;4-1似乎与其拟南芥同源物不同,因为它在达到特定阈值之前有助于盐胁迫耐受性,超过该阈值,TdHKT1;4-1的表达可能导致更高的根部钠流入,从而增加其在盐胁迫期间的毒性。

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