Specific Downregulation of the Bacterial-Type PEPC Gene by Artificial MicroRNA Improves Salt Tolerance in Arabidopsis

文献类型: 外文期刊

第一作者: Wang, Fulin

作者: Wang, Fulin;Shi, Chunhai;Wang, Fulin;Liu, Renhu;Wu, Guanting;Lang, Chunxiu;Chen, Jinqing

作者机构:

关键词: Salt tolerance;Artificial miRNA;Phosphoenolpyruvate;carboxylase;Root development

期刊名称:PLANT MOLECULAR BIOLOGY REPORTER ( 影响因子:1.595; 五年影响因子:2.042 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: Although phosphoenolpyruvate carboxylases (PEPC) are reported to be involved in fatty acid accumulation, nitrogen assimilation, and salt and drought stresses, knowledge on the function of PEPC genes is still limited, particularly on the bacterial-type PEPC gene. To investigate the physiological functionality of Atppc4, an Arabidopsis bacterial-type PEPC gene, Atppc4, was specifically suppressed by artificial microRNA (amiRNA) in Arabidopsis. Transgenic plants with constitutively expressed Atppc4-amiRNA exhibited substantially decreased accumulation of Atppc4 transcripts, whereas other three plant-type PEPC genes, Atppc1, Atppc2 and Atppc3, were significantly upregulated in roots. The PEPC activity was improved about 5.1 times in roots of Atppc4-amiRNA transgenic lines. This result indicates that transcription of bacterial-type and plant-type PEPC genes in plants is interacted with each other in plants. The bacterial-type PEPC genes, Atppc4, may play an important role in modulating the transcription of plant-type PEPC genes. The effects of Atppc4 on seed lipid content and fatty acid composition were not detected in this research. This indicated that Atppc4 might be independent of plant lipid accumulation. However, the root development was found to be related with Atppc4. Root elongation of transgenic plants was significantly inhibited. The inhibition can be partially relieved by salt treatment. The results showed that specific downregulation of the bacterial-type PEPC gene, Atppc4, by artificial microRNA improved salt tolerance in Arabidopsis. The improved salt tolerance may be related with the improved PEPC activity.

分类号: Q94

  • 相关文献

[1]Virus-Based MicroRNA Silencing and Overexpressing in Common Wheat (Triticum aestivum L.). Jian, Chao,Chi, Qing,Wang, Shijuan,Ma, Meng,Liu, Xiangli,Zhao, Huixian,Han, Ran,Zhao, Huixian. 2017

[2]Induction of protection against foot-and-mouth disease virus in cell culture and transgenic suckling mice by miRNA targeting integrin alpha v receptor. Du, Junzheng,Gao, Shandian,Luo, Jihuai,Hao, Chunxia,Yang, Bo,Lin, Tong,Shao, Junjun,Cong, Guozheng,Chang, Huiyun,Guo, Xinbing,Gong, Xiuli,Guo, Xinbing,Gong, Xiuli,Guo, Xinbing,Gong, Xiuli.

[3]A highly efficient method for construction of rice artificial MicroRNA vectors. Chen, Jianping.

[4]Dynamic QTL and epistasis analysis on seedling root traits in upland cotton. Liang, Qingzhi,Li, Pengbo,Hu, Cheng,Hua, Hua,Li, Zhaohu,Hua, Jinping,Rong, Yihua,Wang, Kunbo.

[5]An auxin-responsive endogenous peptide regulates root development in Arabidopsis. Yang, Fengxi,Yang, Hao,Liu, Zhibin,Yang, Yi,Song, Yu,Song, Yu,Yang, Fengxi,Zhu, Genfa. 2014

[6]cGMP is involved in Zn tolerance through the modulation of auxin redistribution in root tips. Zhang, Ping,Sun, Liangliang,Wan, Jinpeng,Wang, Ruling,Li, Shuang,Xu, Jin,Zhang, Ping,Wan, Jinpeng,Li, Shuang,Qin, Jun. 2018

[7]Stem girdling influences concentrations of endogenous cytokinins and abscisic acid in relation to leaf senescence in cotton. Dai, Jianlong,Dong, Hezhong.

[8]OsMOGS is required for N-glycan formation and auxin-mediated root development in rice ( Oryza sativa L.). Wang, SuiKang,Xu, YanXia,Zhang, SaiNa,Jiang, De An,Qi, YanHua,Li, ZhiLan,Lim, Jae-Min,Lim, Jae-Min,Lee, Kyun Oh,Lee, Kyun Oh,Li, ChuanYou,Qian, Qian. 2014

[9]5-Methylcytosine RNA Methylation in &ITArabidopsis Thaliana&IT. Cui, Xuean,Zhang, Qian,Geng, Yuke,Lu, Tiegang,Gu, Xiaofeng,Liang, Zhe,Shen, Lisha,Bao, Shengjie,Zhang, Bin,Yu, Hao,Liang, Zhe,Shen, Lisha,Bao, Shengjie,Zhang, Bin,Yu, Hao,Leo, Vonny,Vardy, Leah A.. 2017

[10]PtFCA from precocious trifoliate orange is regulated by alternative splicing and affects flowering time and root development in transgenic Arabidopsis. Ai, Xiao-Yan,Zhang, Jin-Zhi,Liu, Tian-Jia,Hu, Chun-Gen,Ai, Xiao-Yan. 2016

[11]Bromus Ircutensis Kom Root Growth and Structure. Hao Xiaohong,Yu Tao,Han Bing,Gao Min,Tian Qingsong. 2011

[12]The promoting effects of alginate oligosaccharides on root development in Oryza sativa L. mediated by auxin signaling. Zhang, Yunhong,He, Ailing,Sun, Kegang,Zhang, Yunhong,Yin, Heng,Zhao, Xiaoming,Wang, Wenxia,Du, Yuguang.

[13]System analysis of microRNAs in the development and aluminium stress responses of the maize root system. Kong, Xiangpei,Zhang, Maolin,Li, Cuiling,Ding, Zhaojun,Xu, Xiangbo,Li, Xiaoming.

[14]Overexpression of an S-like ribonuclease gene, OsRNS4, confers enhanced tolerance to high salinity and hyposensitivity to phytochrome-mediated light signals in rice. Zheng, Jun,Wang, Yingying,He, Yanan,Zhou, Jinjun,Li, Yaping,Liu, Qianqian,Xie, Xianzhi,Zheng, Jun,Wang, Yingying,He, Yanan,Zhou, Jinjun,Xie, Xianzhi. 2014

[15]IMPROVED NUTRIENT UPTAKE ENHANCES COTTON GROWTH AND SALINITY TOLERANCE IN SALINE MEDIA. Dai, J. L.,Duan, L. S.,Dong, H. Z.,Dai, J. L.. 2014

[16]Isolation of Arachis hypogaea Na+/H+ antiporter and its expression analysis under salt stress. Wan, Shubo,Meng, Jingjing,Guo, Feng,Li, Xinguo,Wan, Shubo,Meng, Jingjing,Guo, Feng,Li, Xinguo,Xing, Jinyi,Wang, Baozhi,Jia, Kunhang,Wan, Shubo,Meng, Jingjing,Guo, Feng,Li, Xinguo. 2011

[17]Co-expression of AtNHX1 and TsVP improves the salt tolerance of transgenic cotton and increases seed cotton yield in a saline field. Cheng Cheng,Zhang, Kewei,Ying Zhang,Xiugui Chen,Jiuling Song,Zhiqiang Guo,Kunpeng Li,Kewei Zhang. 2018

[18]Expression of a rice gene OsNOA1 re-establishes nitric oxide synthesis and stress-related gene expression for salt tolerance in Arabidopsis nitric oxide-associated 1 mutant Atnoa1. Qiao, Weihua,Yu, Liang,Fan, Liu-Min,Xiao, Shouhua.

[19]Cloning and Expression Analysis of Eight Upland Cotton Pentatricopeptide Repeat Family Genes. Han, Zongfu,Kong, Fanjin,Deng, Yongsheng,Wang, Zongwen,Shen, Guifang,Wang, Jinghui,Duan, Bing,Li, Ruzhong,Qin, Yuxiang.

[20]Genotypic variations in ion homeostasis, photochemical efficiency and antioxidant capacity adjustment to salinity in cotton (Gossypium hirsutum L.). Ning Wang,Haikun Qi,Guilan Su,Jie Yang,Hong Zhou,Qinghua Xu,Qun Huang,Gentu Yan.

作者其他论文 更多>>