Expression study of stress-related genes in salinity-treated transgenic Arabidopsis harboring soybean Response Regulator 34

Pham Ngoc Thai Huyen, Hoang Thi Lan Xuan, Nguyen Nguyen Chuong, Nguyen Thi Phuong Thao
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Abstract

Owing to their sessile nature, plants are easily affected by various extenal factors. Among those, drought and salinity are considered as the most common stresses, which often pose a threat to plant growth and development. Major effects of the drought and salinity are interconnected and drive similar series of molecular changes in plants. These alterations in response to the stress are under the regulation of various signaling pathways, including the engangement of evolutionarily conserved two-component systems (TCSs). Three components with distinct functions can be found in a functional TCS, which are histidine kinases (HKs), histidine-containing phosphotransfer proteins (HPts), and response regulator proteins (RRs). Previous research revealed that the soybean (Glycine max) GmRR34 acts as an important regulatory protein in plants under drought stress conditions. In this project, the investigation on the role of GmRR34 in osmotic stress responses was extended to salinity by examining the expression of a subset of salinity-responsive genes using RT-qPCR method. Our analyses showed that the transgenic Arabidopsis plants ectopically expressing GmRR34 displayed enhanced expression of several important stress-related genes, including Catalase 1 (CAT1), Stromal ascorbate peroxidase 1 (sAPX1), Copper/zinc superoxide dismutase 1 (CSD1), Sodium/hydrogen exchanger 1 (NHX1) and Salt overly sensitive 2 (SOS2). These results indicate that GmRR34-transgenic plants might be more salt-tolerant thanks to stronger activities of antioxidant enzymes and better capacity in maintaining cytosolic ion homeostasis. Therefore, it is highlighted the necessity to perform further studies to fully characterize the GmRR34 biological functions as well as explore its application potential in enhancing the salt tolerance of crop plants. 
盐胁迫相关基因在含大豆应答调节因子34转基因拟南芥中的表达研究
由于植物的无根性,很容易受到各种外界因素的影响。其中,干旱和盐碱化被认为是最常见的胁迫,它们往往对植物的生长发育构成威胁。干旱和盐度的主要影响是相互关联的,并驱动植物中类似的一系列分子变化。这些应激反应的变化受多种信号通路的调控,包括进化保守的双组分系统(TCSs)的参与。在功能性TCS中可以发现三种具有不同功能的成分,它们是组氨酸激酶(HKs)、含组氨酸的磷酸转移蛋白(HPts)和反应调节蛋白(RRs)。以往的研究表明,大豆(Glycine max) GmRR34是干旱胁迫条件下植物的重要调控蛋白。本项目将GmRR34在渗透胁迫应答中的作用扩展到盐度,采用RT-qPCR方法检测了一部分盐度应答基因的表达。结果表明,异位表达GmRR34的转基因拟南芥植株中,过氧化氢酶1 (CAT1)、基质抗坏血酸过氧化物酶1 (sAPX1)、铜/锌超氧化物歧化酶1 (CSD1)、钠/氢交换酶1 (NHX1)和盐过度敏感基因2 (SOS2)的表达增强。这些结果表明,gmrr34转基因植株可能具有更强的抗氧化酶活性和更好的维持细胞质离子稳态的能力,从而具有更强的耐盐性。因此,有必要开展进一步的研究,以充分表征GmRR34的生物学功能,并探索其在提高作物耐盐性方面的应用潜力。
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