通过调节细胞中苹果酸和柠檬酸的水平,SaTDT 增强了植物对 NaCl 胁迫的耐受性。

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xiangyu Wei, Li Xu, Suisui Dong, Nina He, Qianqian Xi, Dan Yao, Qianqian Wang, Yue Zuo, Chen Ling, Meiting Qi, Wen Bai, Kai Han, Yuwei Zhao, Long Tang, Yang Gao
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引用次数: 0

摘要

土壤盐碱化问题是一个全球性的问题,严重影响作物的生产力、质量和分布。Tonoplast Dicarboxylate Transporter (TDT)是一种定位于液泡膜上的关键苹果酸转运蛋白,参与维持植物细胞内pH稳态。然而,植物通过TDT耐盐的分子机制和调控途径尚不清楚。本研究从互花米草中克隆了一个空泡膜二羧酸转运蛋白编码基因SaTDT。随后,研究了其在盐胁迫中的调控作用。在拟南芥中观察到SaTDT的异源表达,增强了转基因植株对盐胁迫的耐受性,减轻了盐胁迫对其生长的伤害。过表达SaTDT可以通过调节苹果酸和柠檬酸的细胞含量,或通过提高MDH和PEPC酶的活性,同时提高植物的光合效率。它还调节和平衡盐胁迫条件下碳同化过程中的能量利用,从而为提高植物的抗逆性奠定能量基础。SaTDT还能增强植物细胞调节抗氧化酶活性或渗透积累的能力,从而在维持细胞内氧化还原稳态中发挥重要作用。本研究结果为阐明SaTDT基因在互花草适应高盐度生境中的调控作用奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SaTDT enhanced plant tolerance to NaCl stress by modulating the levels of malic acid and citric acid in cells.

The issue of soil salinization is a global concern that significantly impairs crop productivity, quality, and distribution. Tonoplast Dicarboxylate Transporter (TDT) is a pivotal malic acid transporter localized on the vacuolar membrane, involving in maintaining intracellular pH homeostasis in plants. However, the molecular mechanisms and regulatory pathways underlying plant salt tolerance through TDT remain elusive. In this study, we cloned a gene encoding vacuolar membrane dicarboxylic acid transporter designated as SaTDT from the halophyte Spartina alterniflora. Subsequently, its role in regulating salt stress was investigated. The heterologous expression of SaTDT in Arabidopsis thaliana was observed to enhance the transgenic plants' tolerance to salt stress and alleviate the growth damage caused by this stress. The overexpression of SaTDT can simultaneously enhance plant photosynthetic efficiency by regulating the cellular contents of malic acid and citric acid, or by increasing the activity of MDH and PEPC enzymes. It also regulates and balances energy utilization during carbon assimilation under salt-stressed conditions, thereby establishing an energetic foundation for enhancing plant tolerance to stress. SaTDT also has the capacity to enhance the plant cells' ability in regulating antioxidant enzyme activity or osmotic accumulation, thereby playing a crucial role in maintaining intracellular redox homeostasis. In conclusion, our findings establish a foundation basis for elucidating the regulatory role of the SaTDT gene in S.alterniflora's adaptation to high-salinity habitats.

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来源期刊
Plant Molecular Biology
Plant Molecular Biology 生物-生化与分子生物学
自引率
2.00%
发文量
95
审稿时长
1.4 months
期刊介绍: Plant Molecular Biology is an international journal dedicated to rapid publication of original research articles in all areas of plant biology.The Editorial Board welcomes full-length manuscripts that address important biological problems of broad interest, including research in comparative genomics, functional genomics, proteomics, bioinformatics, computational biology, biochemical and regulatory networks, and biotechnology. Because space in the journal is limited, however, preference is given to publication of results that provide significant new insights into biological problems and that advance the understanding of structure, function, mechanisms, or regulation. Authors must ensure that results are of high quality and that manuscripts are written for a broad plant science audience.
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