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小麦 NAC 转录因子 TaNAC29 参与耐盐反应。

Wheat NAC transcription factor TaNAC29 is involved in response to salt stress.

机构信息

State Key Laboratory of Crop Stress Biology for Arid Areas, College of Agronomy, Northwest A&F University, Yangling, Shaanxi 712100, China; Qinghai Academy of Agriculture and Forestry Sciences, Xining, Qinghai 810016, China.

State Key Laboratory of Crop Stress Biology for Arid Areas, College of Agronomy, Northwest A&F University, Yangling, Shaanxi 712100, China.

出版信息

Plant Physiol Biochem. 2015 Nov;96:356-63. doi: 10.1016/j.plaphy.2015.08.013. Epub 2015 Aug 22.

Abstract

Soil salinity is considered as one of the most severe abiotic stress factors, which limit plant growth and cause significant losses in crop yield. NAC transcription factors have been proven to play vital roles in abiotic stress signaling in plants. As a staple crop, wheat production is severely constrained by salt stress whereas only a few NAC genes have been characterized functionally. To promote the application of NAC genes in wheat improvement by genetic engineering, a NAC gene designated TaNAC29 was characterized in common wheat. Expression analysis showed that TaNAC29 gene was involved in response to salt, drought and ABA treatments. TaNAC29 protein displays transactivation activity. To determine its role, transgenic Arabidopsis overexpressing TaNAC29 controlled by the CaMV-35S promoter was generated and subjected to salt stress for morphological and physiological assays. Morphological analysis showed that transgenic plants had enhanced tolerance to salt stress, as indicated by improved physiological traits, including more green leaves, reduced H2O2 accumulation, strengthened cell membrane stability and higher SOD, POD, CAT and APX activities. Moreover, the transcript levels of stress-related genes were significantly higher in TaNAC29 overexpression line than those in WT under salt treatment. Taken together, our results demonstrate that TaNAC29 confers salt stress tolerance through reducing H2O2 accumulation and membrane damage by enhancing the antioxidant system, and participating in regulating the abiotic stress-responsive signaling pathway.

摘要

土壤盐度被认为是最严重的非生物胁迫因素之一,它限制了植物的生长,导致作物产量的重大损失。现已证明 NAC 转录因子在植物的非生物胁迫信号转导中起着至关重要的作用。小麦作为一种主要作物,其生产受到盐胁迫的严重限制,而仅有少数 NAC 基因具有功能特征。为了促进 NAC 基因在小麦遗传工程改良中的应用,本研究对普通小麦中的一个 NAC 基因 TaNAC29 进行了鉴定。表达分析表明,TaNAC29 基因参与了对盐、干旱和 ABA 处理的响应。TaNAC29 蛋白具有转录激活活性。为了确定其作用,构建了由 CaMV-35S 启动子驱动的 TaNAC29 过表达转基因拟南芥,并对其进行盐胁迫处理,以进行形态和生理测定。形态分析表明,转基因植株对盐胁迫具有增强的耐受性,表现在生理特性得到改善,包括更多的绿叶、减少 H2O2 积累、增强细胞膜稳定性以及更高的 SOD、POD、CAT 和 APX 活性。此外,在盐处理下,过表达 TaNAC29 的转基因系中与胁迫相关的基因的转录水平明显高于 WT。总之,我们的结果表明,TaNAC29 通过增强抗氧化系统来减少 H2O2 积累和膜损伤,从而赋予耐盐性,并参与调节非生物胁迫响应信号通路。

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