Hubei Key Laboratory of Genetic Regulation and Integrative Biology, School of Life Sciences, Central China Normal University, Wuhan 430079, China.
Hubei Key Laboratory of Genetic Regulation and Integrative Biology, School of Life Sciences, Central China Normal University, Wuhan 430079, China.
Plant Physiol Biochem. 2015 Nov;96:311-20. doi: 10.1016/j.plaphy.2015.08.016. Epub 2015 Aug 28.
Soil salinity is one of the most serious threats in world agriculture, and often influences cotton growth and development, resulting in a significant loss in cotton crop yield. WRKY transcription factors are involved in plant response to high salinity stress, but little is known about the role of WRKY transcription factors in cotton so far. In this study, a member (GhWRKY34) of cotton WRKY family was functionally characterized. This protein containing a WRKY domain and a zinc-finger motif belongs to group III of cotton WRKY family. Subcellular localization assay indicated that GhWRKY34 is localized to the cell nucleus. Overexpression of GhWRKY34 in Arabidopsis enhanced the transgenic plant tolerance to salt stress. Several parameters (such as seed germination, green cotyledons, root length and chlorophyll content) in the GhWRKY34 transgenic lines were significantly higher than those in wild type under NaCl treatment. On the contrary, the GhWRKY34 transgenic plants exhibited a substantially lower ratio of Na(+)/K(+) in leaves and roots dealing with salt stress, compared with wild type. Growth status of the GhWRKY34 transgenic plants was much better than that of wild type under salt stress. Expressions of the stress-related genes were remarkably up-regulated in the transgenic plants under salt stress, compared with those in wild type. Based on the data presented in this study, we hypothesize that GhWRKY34 as a positive transcription regulator may function in plant response to high salinity stress through maintaining the Na(+)/K(+) homeostasis as well as activating the salt stress-related genes in cells.
土壤盐度是世界农业面临的最严重威胁之一,常影响棉花的生长和发育,导致棉花作物产量的显著损失。WRKY 转录因子参与植物对高盐胁迫的响应,但迄今为止,人们对棉花中 WRKY 转录因子的作用知之甚少。在本研究中,对棉花 WRKY 家族的一个成员(GhWRKY34)进行了功能表征。该蛋白含有 WRKY 结构域和锌指基序,属于棉花 WRKY 家族的第 III 组。亚细胞定位试验表明 GhWRKY34 定位于细胞核。在拟南芥中过表达 GhWRKY34 增强了转基因植物对盐胁迫的耐受性。在 NaCl 处理下,GhWRKY34 转基因系的几个参数(如种子萌发、绿色子叶、根长和叶绿素含量)均显著高于野生型。相反,与野生型相比,GhWRKY34 转基因植物在处理盐胁迫时叶片和根部的 Na(+)/K(+) 比值明显较低。在盐胁迫下,GhWRKY34 转基因植物的生长状况明显好于野生型。与野生型相比,盐胁迫下转基因植物中应激相关基因的表达显著上调。根据本研究提供的数据,我们假设 GhWRKY34 作为一个正转录调控因子,可能通过维持细胞内 Na(+)/K(+) 平衡以及激活盐胁迫相关基因来参与植物对高盐胁迫的响应。