The wheat WRKY transcription factor TaWRKY1-2D confers drought resistance in transgenic Arabidopsis and wheat (Triticum aestivum L.)

WRKY蛋白质结构域 拟南芥 非生物胁迫 转录因子 转基因 生物 转基因作物 耐旱性 转录组 脯氨酸 植物 基因 基因表达 遗传学 突变体 氨基酸
作者
Yang Yu,Tianqi Song,Yukun Wang,Mingfei Zhang,Nan Li,Ming Yu,Shuangxing Zhang,Hongwei Zhou,Sihai Guo,Yaning Bu,Tingting Wang,Jishan Xiang,Xiaoke Zhang
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:226: 1203-1217 被引量:30
标识
DOI:10.1016/j.ijbiomac.2022.11.234
摘要

The WRKY transcription factor family has been associated with a variety of plant biological processes, such as biotic and abiotic stress responses. In this study, 13 wheat TaWRKY DEGs in transcriptome data before and after drought stress, namely TaWRKY1 to TaWRKY8, including various copies, were identified and classified as Group I, II, or III. TaWRKY1-2D overexpression enhanced drought tolerance in transgenic Arabidopsis. Moreover, the AtRD29A, AtP5CS1, AtPOD1, AtCAT1, and AtSOD (Cu/Zn) genes, which are related to the stress response and antioxidant system, were significantly upregulated in TaWRKY1-2D transgenic Arabidopsis under drought stress. TaWRKY1-2 silencing in wheat increases the MDA content, reduces the contents of proline and chlorophyll and the activities of antioxidant enzymes, and inhibits the expression levels of antioxidant (TaPOD, TaCAT, and TaSOD (Fe))- and stress-related genes (TaP5CS) under drought stress. Yeast two-hybrid screening revealed TaDHN3 as an interaction partner of TaWRKY1-2D; their interaction was further confirmed using yeast two-hybrid and bimolecular fluorescence complementation. Furthermore, TaWRKY1-2D may play essential roles in wheat drought tolerance through posttranslational regulation of TaDHN3. Overall, these findings contribute to our knowledge of the WRKY family in wheat and identify TaWRKY1-2D as a promising candidate gene for improving wheat breeding to generate drought-tolerant wheat.
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