数字农科院2.0

EFFECTS OF GRAPE (VITIS VINIFERA L.) R2R3-MYB TRANSCRIPTION FACTOR, MYB6 ON DROUGHT STRESS TOLERANCE IN TRANSGENIC TOBACCO

文献类型: 外文期刊

作者: Lu, Yihai;Zhu, Qianyan;Wang, Zhenxian;Wang, Ling;Fan, Xiucai;Zhu, Ziguo;Li, Guirong

作者机构:

关键词: Grape;Drought tolerance;VvMYB6;Physiological and biochemical indicators;Transgenic tobacco;Gene function;Gene functional verification

期刊名称: BANGLADESH JOURNAL OF BOTANY

ISSN: 0253-5416

年卷期: 2025 年 54 卷 2 期

页码:

收录情况: SCIE(2025版)

摘要: The identification of stress-associated genes in grape are essential for improving its drought resistance. In this study, MYB6, a R2R3-MYB in grape 'Yatomi Rose' (Vitis vinifera L.) was identified, and the stress response phenotypes of tobacco lines overexpressing this gene were investigated. The results revealed that root lengths, fresh weights, and heights of transgenic tobacco with overexpression of VvMYB6 were significantly different from empty vector-transformed (EV) tobacco under optimum stress conditions. Under drought stress, the leaves of transgenic tobacco with overexpression of VvMYB6 had less blue-brown patches and lighter color compared with the EV-transformed tobacco, which indicates a reduction in the content of reactive oxygen species (ROS). VvMYB6-overexpressing tobacco plants showed less electrolyte leakage, but increased contents of chlorophyll and proline. Additionally, the contents of malondialdehyde (MDA) and H2O2 decreased in VvMYB6-overexpressing tobacco plants owing to increased activity of antioxidant enzymes. This study significantly deepens the understanding of the roles of R2R3-MYB TFs in drought tolerance of plants and facilitates the development of cultivars with enhanced stress tolerance.

分类号:

  • 相关文献

[1]Using double-stranded RNA to explore the role of heat shock protein genes in heat tolerance in Bemisia tabaci (Gennadius). Lue, Zhi-Chuang,Wan, Fang-Hao,Wan, Fang-Hao.

[2]A high-efficiency PEG-Ca2+-mediated transient transformation system for broccoli protoplasts. Yang D.,Zhao Y.,Liu Y.,Han F.,Li Z.. 2022

[3]Synonymous codon usage and gene function are strongly related in Oryza sativa. Qingpo Liu , Shijuan Dou , Zhijuan Ji , Qingzhong Xue *. 2005

[4]Functional analysis of polyphenol oxidase 1 gene in common wheat. Zhai, Shengnan,Liu, Hang,Xia, Xianchun,Li, Haosheng,Cao, Xinyou,He, Zhonghu,Ma, Wujun,Liu, Cheng,Song, Jianmin,Liu, Aifeng,Zhang, Jingjuan,Liu, Jianjun. 2023

[5]Genome-wide identification, evolution and function analysis of UGTs superfamily in cotton. Liangqing Sun,Lanjie Zhao,Hui Huang,Yuexin Zhang,Junjuan Wang,Xuke Lu,Shuai Wang,Delong Wang,Xiugui Chen,Chao Chen,Lixue Guo,Nan Xu,Hong Zhang,Jing Wang,Cun Rui,Mingge Han,Yapeng Fan,Taili Nie,Wuwei Ye. 2022

[6]Mapping and functional verification of leaf yellowing genes in watermelon during whole growth period. Zhu, Yingchun,Yuan, Gaopeng,Wang, Yifan,An, Guolin,Li, Weihua,Liu, Junpu,Sun, Dexi. 2022

[7]Characterization and Identification of a Ripening-Related Gene AaPG18 in Actinidia arguta. Yukuo Li,Hailei Huang,Muhammad Abid,Hong Gu,Jinbao Fang,Zhongping Cheng,Xiujuan Qi. 2022

[8]Identification and functional characterization of bidirectional gene pairs and their intergenic regions in cotton. Jiangtao Yang,Lihua Gao,Xiaochun Zhang,Ran Zheng,Xuan Liu,Yuxin Cui,Zhixing Wang,Xujing Wang. 2024

[9]The NAC transcription factor LuNAC61 negatively regulates fiber development in flax (Linum usitatissimum L.). Dongwei Xie,Jing Li,Wan Li,Lijun Sun,Zhigang Dai,Wenzhi Zhou,Jianguang Su,Jian Sun. 2024

[10]CsCBF1/CsZHD9-CsMADS27, a critical gene module controlling dormancy and bud break in tea plants. Hao, Xinyuan,Tang, Junwei,Chen, Yao,Huang, Chao,Zhang, Weifu,Liu, Ying,Yue, Chuan,Wang, Lu,Ding, Changqing,Dai, Wenhao,Yang, Yajun,Horvath, David P.,Wang, Xinchao. 2024

[11]Isolation and characterization of Brittle2 promoter from Zea Mays and its comparison with Ze19 promoter in transgenic tobacco plants. Chen, Xiaoping,Wang, Zhangying,Wang, Jianhua,Wang, Maoyan,Zhao, Li,Wang, Guoying. 2007

[12](E)-beta-Farnesene synthase genes affect aphid (Myzus persicae) infestation in tobacco (Nicotiana tabacum). Yu, Xiudao,Ma, Youzhi,Wang, Genping,Xu, Zhaoshi,Zhang, Baoming,Xia, Lanqin,Jones, Huw D.,Pickett, John A.,Zhang, Yongjun,Ren, Guangwei. 2012

[13]Expression of a nematode symbiotic bacterium-derived protease inhibitor protein in tobacco enhanced tolerance against Myzus persicae. Zhang, Heqing,Mao, Jianjun,Liu, Fengjiao,Zeng, Fanrong. 2012

[14]Cloning and Characterization of a Putative CTR1 Gene from Wheat. Bi Cai-Li,Wen Xiao-Jie,Zhang Xue-Yong,Liu Xu,Bi Cai-Li. 2010

[15]A Scutellaria baicalensis R2R3-MYB gene, SbMYB8, regulates flavonoid biosynthesis and improves drought stress tolerance in transgenic tobacco. Yuan, Yuan,Qi, Linjie,Yang, Jian,Wu, Chong,Huang, Luqi,Liu, Yunjun.

[16]Expression of an alfalfa (Medicago sativa L.) ethylene response factor gene MsERF8 in tobacco plants enhances resistance to salinity. Chen, Tingting,Sun, Yan,Chen, Tingting,Yang, Qingchuan,Kang, Junmei,Ding, Wang,Zhang, Tiejun,Chen, Tingting,Zhang, Xinquan,Gruber, Margaret.

[17]Cloning and function analysis of an alfalfa (Medicago sativa L.) zinc finger protein promoter MsZPP. Yang, Qingchuan,Kang, Junmei,Zhang, Tiejun,Sun, Yan,Gruber, Margaret Yvonne,Fang, Feng.

[18]Isolation and functional characterization of a Medicago sativa L. gene, MsLEA3-1. Sun, Yan,Sun, Yan,Bai, Yongqin,Yang, Qingchuan,Kang, Junmei,Chao, Yuehui,Gruber, Margaret.

[19]Plant-mediated RNAi of a gap gene-enhanced tobacco tolerance against the Myzus persicae. Mao, Jianjun,Zeng, Fanrong. 2014

[20]Overexpression of the Galega orientalis gibberellin receptor improves biomass production in transgenic tobacco. Li, Jun,Gao, Hongwen,Jiang, Jishan,Wang, Zan,Wang, Xuemin,Dzyubenko, Nikolay,Chapurin, Vladimir.

作者其他论文 更多>>