数字农科院2.0

Co-expression of xerophyte Zygophyllum xanthoxylum ZxNHX and ZxVP1-1 confers enhanced salinity tolerance in chimeric sugar beet (Beta vulgaris L.)

文献类型: 外文期刊

作者: Wu, Guo-Qiang;Feng, Rui-Jun;Yuan, Hui-Jun;Wang, Suo-Min;Bao, Ai-Ke;Wei, Li;Wang, Chun-Mei

作者机构:

关键词: salinity tolerance;tonoplast Na+/H+ antiporter;H+-PPase;Na+ compartmentalization;sugar beet

期刊名称: FRONTIERS IN PLANT SCIENCE

ISSN: 1664-462X

年卷期: 2015 年 6 卷

页码:

收录情况: SCI

摘要: Salinity is one of the major abiotic stresses that limit the growth and productivity of sugar beet (Beta vulgaris L.). To improve sugar beet's salinity tolerance, the ZxNHX and ZxVP1-1 genes encoding tonoplast Na+/H+ antiporter and H+-PPase from xerophyte Zygophyllum xanthoxylum were co-expressed by Agrobacterium tumefaciens-mediated transformation. It is showed here that co-expression of ZxNHX and ZxVP1-1 confers enhanced salinity tolerance to the transformed sugar beet plants compared with the wild-type (WT) plants. The chimeric plants grew well in the presence of high salinity (400 mM NaCl), whereas WT plants displayed chlorosis and died within 8 days. Compared to WT plants, the chimeric plants co-expressing ZxNHX and ZxVP1-1 accumulated more proline, Na+ and K+ in their leaves and petioles when exposed to high salinity, which caused lower solute potential, retained more water and thus subjected to lesser cell membrane damage. Interestingly, the chimeric plants accumulated higher sucrose, glucose and fructose contents in their storage roots than WT plants in the absence or presence of high salinity. Our results suggested that co-expression of ZxNHX and ZxVP1-1 improved the osmoregulatory capacity in chimeric sugar beet through increased compartmentalization of ions into the vacuoles by enhancing the activity of proton pumps and thus mitigated Na+-toxicity for plants.

分类号:

  • 相关文献

[1]陆地棉耐盐相关基因(GhVP)的克隆及分析. 叶武威,赵云雷,王俊娟,樊保香,王德龙. 2010

[2]Effects of salinity on activities of H+ -ATPase, H+-PPase and membrane lipid composition in plasma membrane and tonoplast vesicles isolated from soybean (Glycine max L.) seedlings. Yu, BJ,Lam, HM,Shao, GH,Liu, YL. 2005

[3]Expression of the Thellungiella halophila vacuolar H+-pyrophosphatase gene (TsVP) in cotton improves salinity tolerance and increases seed cotton yield in a saline field. Kewei Zhang,Jiuling Song,Xiugui Chen,Tingting Yin,Changbin Liu,Kunpeng Li,Juren Zhang.

[4]Differential expression of salt tolerance related genes in Brassica campestris L. ssp chinensis (L.) Makino var. communis Tsen et Lee. Qiu, Yang,Li, Xi-xiang,Zhi, Hai-ying,Shen, Di,Lu, Peng. 2009

[5]Response of broomcorn millet (Panicum miliaceum L.) genotypes from semiarid regions of China to salt stress. Liu, Minxuan,Zhang, Shuang,Wang, Yinyue,Lu, Ping,Qiao, Zhijun,Wang, Yinyue. 2015

[6]Identification of salt-tolerant QTLs with strong genetic background effect using two sets of reciprocal introgression lines in rice. Cheng, Lirui,Wang, Yun,Meng, Lijun,Hu, Xia,Cui, Yanru,Sun, Yong,Zhu, Linghua,Xu, Jianlong,Li, Zhikang,Wang, Yun,Ali, Jauhar,Li, Zhikang.

[7]Identification of salt tolerance-improving quantitative trait loci alleles from a salt-susceptible rice breeding line by introgression breeding. Qiu, Xianjin,Yuan, Zhihua,Liu, Huan,Yang, Longwei,He, Wenjing,Du, Bin,Xing, Danying,Xiang, Xiaojiao,Xu, Jianlong,Ye, Guoyou,Xu, Jianlong.

[8]Genetic diversity and association mapping for salinity tolerance in Bangladeshi rice landraces. Reza M. Emon , Mirza M. Islam *, Jyotirmoy Halder , Yeyang Fan *. 2015

[9]Analysis of the effects of mepiquat chloride priming on the seedling growth-promoting in cotton under salt stress by multi-omics. Wang, Ning,Wang, Xiangru,Qi, Qian,Iqbal, Asif,Zhang, Hengheng,Shi, Jianbin,Dong, Qiang,Xu, Qinghua,Liu, Xiaohong,Gui, Huiping,Song, Meizhen,Zhang, Xiling,Yan, Gentu. 2022

[10]Qtl Analysis For Rice Salinity Tolerance And Fine Mapping Of A Candidate Locus Qsl7 For Shoot Length Under Salt Stress. Jahan, N, Zhang, Y, Lv, Y, Song, MQ, Zhao, CY, Hu, HT, Cui, YT, Wang, ZW, Yang, SL, Zhang, AP, Hu, J, Ye, GY, Qian, Q, Gao, ZY, Guo, LB. 2020

[11]Deep learning-enabled discovery and characterization of HKT genes in Spartina alterniflora. Yang, Maogeng,Chen, Shoukun,Huang, Zhangping,Gao, Shang,Yu, Tingxi,Du, Tingting,Zhang, Hao,Li, Xiang,Liu, Chun-Ming,Chen, Shihua,Li, Huihui. 2023

[12]Screening of Rice (Oryza sativa L.) Genotypes for Salinity Tolerance and Dissecting Determinants of Tolerance Mechanism. Chen T.,Niu Y.,Yang C.,Liang Y.,Xu J.. 2024

[13]Salt tolerance in quinoa genotypes: Ion-specific adaptations and growth performance under hydroponic conditions. Iqbal, S.,Baloch, H.,Hafeez, M. B.,Zahra, N.,Fatima, E. M.,Raza, A.,Raza, S.,Saddiq, M. S.. 2025

[14]Nanopriming with carbon dots enhances cotton seed germination and salt tolerance by activating salt-induced ROS signaling to modulate Na+ homeostasis. Zhang, Hengheng,Gao, Wenju,Wang, Ning,Wang, Xiangru,Ma, Xiaoyan,Chen, Jing,Tang, Qiuxiang,Zhang, Jianxin. 2025

[15]Itraq-Based Comparative Proteomic Analysis Provides I.nsights Into Molecular Mechanisms O f Salt Tolerance In Sugar Beet (Beta Vulgaris L.). Feng, Rui-Jun,Li, Shan-Jia,Wang, Chun-Mei,Wu, Guo-Qiang,Wu, Guo-Qiang,Wang, Jin-Long. 2018

[16]Sugar Beet Production and Industry in China. Geng, Gui,Yang, Ji,Geng, Gui,Yang, Ji. 2015

[17]Proteomic changes induced by potassium deficiency and potassium substitution by sodium in sugar beet. Pi, Zhi,Sun, Fei,Yang, Yun,Sun, Xuewei,Zhao, Huijie,Geng, Gui,Yu, Lihua,Stevanato, Piergiorgio,Geng, Gui,Yu, Lihua,Pi, Zhi.

[18]Production of Sugar Beet and Maize as Energy Crops in Saline Alkali Soil. Geng, Gui,Yu, Lihua,Song, Fuqiang,Yang, Fengshan,Zhao, Huijie,Geng, Gui,Yu, Lihua. 2013

[19]Soil losses due to potato and sugar beet harvesting in NE China. Li, Y.,Ruysschaert, G.,Poesen, J.,Zhang, Q. W.,Bai, L. Y.,Li, L.,Sun, L. F..

[20]EFFECTS OF POTASSIUM DEFICIENCY AND REPLACEMENT OF POTASSIUM BY SODIUM ON SUGAR BEET PLANTS. Pi, Z.,Yv, L. H.,Geng, G.,Guo, X. L.,Yang, Y.,Peng, C. X.,Kong, X. S.,Stevanato, P.,Yv, L. H.,Geng, G..

作者其他论文 更多>>