Development of transgenic wheat plants withstand salt stress via the MDAR1 gene

被引:0
|
作者
Abdelsattar, Mohamed [1 ]
Ramadan, Ahmed M. [2 ,3 ]
Eltayeb, Amin E. [4 ]
Saleh, Osama M. [5 ]
Abdel-Tawab, Fatthy M. [6 ]
Fahmy, Eman M. [6 ]
Hassanein, Sameh E. [1 ,7 ]
Ali, Hani M. [2 ,3 ]
Al-Saud, Najla B. S. [2 ,3 ]
Alameldin, Hussien. F. [1 ,8 ]
Hassan, Sabah M. [2 ,3 ]
Mohamed, Nermin G. [9 ]
Azeiz, Ahmed Z. Abdel [9 ]
Bahieldin, Ahmed [2 ]
Eissa, Hala F. [1 ,9 ]
机构
[1] Agr Res Ctr ARC, Agr Genet Engn Res Inst AGERI, Giza 12619, Egypt
[2] King Abdulaziz Univ KAU, Fac Sci, Dept Biol Sci, Jeddah, Saudi Arabia
[3] King Abdulaziz, Princess Najla Bint Saud Al Saud Ctr Excellence Re, Jeddah, Saudi Arabia
[4] Tottori Univ, Tottori, Japan
[5] Egyptian Atom Energy Author, Natl Ctr Radiat Res & Technol NCRRT, Dept Nat Prod Res, Cairo, Egypt
[6] Ain Shams Univ, Fac Agr, Dept Genet, Cairo, Egypt
[7] Nile Univ, Giza, Egypt
[8] Michigan State Univ, DOEPlant Res Lab, Corunna, MI USA
[9] Misr Univ Sci Technol, Coll Pharm, 6th Of October City, Egypt
来源
GM CROPS & FOOD-BIOTECHNOLOGY IN AGRICULTURE AND THE FOOD CHAIN | 2025年 / 16卷 / 01期
关键词
Wheat transformation; MDAR1; gene; AsA; salt stress; H+-PPASE GENE; MONODEHYDROASCORBATE REDUCTASE; ASCORBIC-ACID; THELLUNGIELLA-HALOPHILA; ENHANCED TOLERANCE; OVEREXPRESSION; EXPRESSION; GROWTH; MITOCHONDRIA; PEROXISOMES;
D O I
10.1080/21645698.2025.2463139
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
In light of the fact that climate change has emerged as one of the difficulties confronting the global food system, researchers are obligated to work toward developing fundamental crops, particularly wheat, to combat environmental stress, including drought and salt. In the present study, genetic engineering was used to transfer the Arabidopsis MDAR1 gene, which controls the buildup of ascorbic acid (AsA) to make bread wheat less likely to be sensitive to salt stress. The biolistic bombardment was used to transfer cDNA from the Arabidopsis thaliana plant that encodes MDAR1 into Bobwhite 56 cultivar wheat plants. A molecular investigation was performed on six different transgenic lines to confirm the integration of the transgene, the copy number, and the expression of the transgene. There were one to three copies of the transgene, and there was no association found between the number of copies of the transgene and All the data generated or analyzed during this study are included in this published article [and its supplementary information files].the presence of its expression. Compared to plants that were not transgenic, the amount of ascorbic acid (AsA) that accumulated in the transgenic plants was twice as high. ROS concentrations are significantly lower in transgenic plants compared to non-transgenic plants under both control and salt stress conditions, effectively reducing oxidative stress. By cultivating transgenic T2 plants in a greenhouse, we were able to determine whether they were able to tolerate the potentially damaging effects of salt stress (200 mm). The study concluded that transgenic wheat plants that consistently expressed the MDAR1 gene become tolerant to salt stress with improvement in growth characteristics.
引用
收藏
页码:173 / 187
页数:15
相关论文
共 50 条
  • [41] Physiological responses of transgenic tobacco plants expressing the dehydration-responsive RD22 gene of Vitis vinifera to salt stress
    Jamoussi, Rahma Jardak
    Elabbassi, Mohamed Malek
    Ben Jouira, Hatem
    Hanana, Mohsen
    Zoghlami, Nejia
    Ghorbel, Abdelwahed
    Mliki, Ahmed
    TURKISH JOURNAL OF BOTANY, 2014, 38 (02) : 268 - 280
  • [42] Oil Palm AP2 Subfamily Gene EgAP2.25 Improves Salt Stress Tolerance in Transgenic Tobacco Plants
    Zhou, Lixia
    Cao, Hongxing
    Zeng, Xianhai
    Wu, Qiufei
    Li, Qihong
    Martin, Jerome Jeyakumar John
    Fu, Dengqiang
    Liu, Xiaoyu
    Li, Xinyu
    Li, Rui
    Ye, Jianqiu
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2024, 25 (11)
  • [43] Improved salinity tolerance and growth performance in transgenic sunflower plants via ectopic expression of a wheat antiporter gene (TaNHX2)
    Mushke, Ramesh
    Yarra, Rajesh
    Kirti, P. B.
    MOLECULAR BIOLOGY REPORTS, 2019, 46 (06) : 5941 - 5953
  • [44] The poplar VQ1 gene confers salt tolerance and pathogen resistance in transgenic Arabidopsis plants via changes in hormonal signaling
    Liu, Shifan
    Wang, Zhaocheng
    Wu, Jing
    Wu, Caijuan
    Xiong, Rui
    Xiang, Yan
    Yan, Hanwei
    G3-GENES GENOMES GENETICS, 2022, 12 (04):
  • [45] Modulation in gene expression and enzyme activity suggested the roles of monodehydroascorbate reductase in development and stress response in bread wheat
    Madhu, Alok
    Sharma, Alok
    Kaur, Amandeep
    Singh, Kashmir
    Upadhyay, Santosh Kumar
    PLANT SCIENCE, 2024, 338
  • [46] Transgenic Tobacco Plants Overexpressing a Grass PpEXP1 Gene Exhibit Enhanced Tolerance to Heat Stress
    Xu, Qian
    Xu, Xiao
    Shi, Yang
    Xu, Jichen
    Huang, Bingru
    PLOS ONE, 2014, 9 (07):
  • [47] Overexpression of the wheat expansin gene TaEXPA2 improves oxidative stress tolerance in transgenic Arabidopsis plants
    Chen, Yanhui
    Ren, Yuanqing
    Zhang, Guangqiang
    An, Jie
    Yang, Junjiao
    Wang, Yong
    Wang, Wei
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2018, 124 : 190 - 198
  • [48] Overexpression of a samphire high-affinity potassium transporter gene SbHKT1 enhances salt tolerance in transgenic cotton
    Guo, Qi
    Meng, Shan
    Tao, Shucui
    Feng, Juan
    Fan, Xinqi
    Xu, Peng
    Xu, Zhenzhen
    Shen, Xinlian
    ACTA PHYSIOLOGIAE PLANTARUM, 2020, 42 (03)
  • [49] Over-Expression of the Heat-Responsive Wheat Gene TaHSP23.9 in Transgenic Arabidopsis Conferred Tolerance to Heat and Salt Stress
    Wang, Jun
    Gao, Xin
    Dong, Jun
    Tian, Xinyu
    Wang, Junzhe
    Palta, Jairo A.
    Xu, Shengbao
    Fang, Yan
    Wang, Zhonghua
    FRONTIERS IN PLANT SCIENCE, 2020, 11
  • [50] Eutrema EsMYB90 Gene Improves Growth and Antioxidant Capacity of Transgenic Wheat Under Salinity Stress
    Li, Chuanshun
    Zhao, Yaoyao
    Qi, Yuting
    Duan, Chonghao
    Zhang, Hengyang
    Zhang, Quan
    FRONTIERS IN PLANT SCIENCE, 2022, 13