Generation of Marker- and/or Backbone-Free Transgenic Wheat Plants via Agrobacterium-Mediated Transformation

文献类型: 外文期刊

第一作者: Wang, Gen-Ping

作者: Wang, Gen-Ping;Yu, Xiu-Dao;Sun, Yong-Wei;Xia, Lan-Qin;Wang, Gen-Ping;Jones, Huw D.

作者机构:

关键词: agrobacterium-mediated transformation;dual binary vector;durum wheat (triticum turgidum L. var. durum cv stewart 63);genetically modified (Gm) wheat;marker- and backbone-free transgenic line

期刊名称:FRONTIERS IN PLANT SCIENCE ( 影响因子:5.753; 五年影响因子:6.612 )

ISSN: 1664-462X

年卷期: 2016 年 7 卷

页码:

收录情况: SCI

摘要: Horizontal transfer of antibiotic resistance genes to animals and vertical transfer of herbicide resistance genes to the weedy relatives are perceived as major biosafety concerns in genetically modified (GM) crops. In this study, five novel vectors which used gusA and bar as a reporter gene and a selection marker gene, respectively, were constructed based on the pCLEAN dual binary vector system. Among these vectors, 1G7B and 5G7B carried two T-DNAs located on two respective plasmids with 5G7B possessing an additional virGwt gene. 5LBTG154 and 5TGTB154 carried two T-DNAs in the target plasmid with either one or double right borders, and 5BTG154 carried the selectable marker gene on the backbone outside of the T-DNA left border in the target plasmid. In addition, 5BTG154, 5LBTG154, and 5TGTB154 used pAL154 as a helper plasmid which contains Komari fragment to facilitate transformation. These five dual binary vector combinations were transformed into Agrobacterium strain AGL1 and used to transform durum wheat cv Stewart 63. Evaluation of the co-transformation efficiencies, the frequencies of marker-free transgenic plants, and integration of backbone sequences in the obtained transgenic lines indicated that two vectors (5G7B and 5TGTB154) were more efficient in generating marker-free transgenic wheat plants with no or minimal integration of backbone sequences in the wheat genome. The vector series developed in this study for generation of marker- and/or backbone-free transgenic wheat plants via Agrobacterium-mediated transformation will be useful to facilitate the creation of "clean" GM wheat containing only the foreign genes of agronomic importance.

分类号:

  • 相关文献

[1]Development of highly regenerable callus lines and Agrobacterium-mediated transformation of Chinese lawngrass (Zoysia sinica Hance) with a cold inducible transcription factor, CBF1. Li, RF,Wei, JH,Wang, HZ,He, J,Sun, ZY. 2006

[2]Screening Chinese soybean genotypes for Agrobacterium-mediated genetic transformation suitability. Song, Zhang-yue,Tian, Jing-luan,Fu, Wei-zhe,Li, Lin,Lu, Ling-hong,Zhou, Lian,Shou, Hui-xia,Shan, Zhi-hui,Tang, Gui-xiang. 2013

[3]An efficient and high-throughput protocol for Agrobacterium-mediated transformation based on phosphomannose isomerase positive selection in Japonica rice (Oryza sativa L.). Duan, Yongbo,Li, Hao,Li, Juan,Ni, Dahu,Song, Fengshun,Li, Li,Yang, Jianbo,Duan, Yongbo,Song, Fengshun,Zhai, Chenguang,Mei, Wenqian,Gui, Huaping,Zhang, Wanggen,Li, Hao,Li, Juan,Ni, Dahu. 2012

[4]Mannose selection system used for cucumber transformation. He, Zhengquan,Duan, ZhenZhen,Liang, Wei,Chen, Faju,Yao, Wei,Liang, Hongwei,Yue, Chaoyin,Sun, Zongxiu,Chen, Fan,Dai, Jianwu. 2006

[5]Construction of two Gateway vectors for gene expression in fungi. Zhu, Tingheng,Yang, Xiao,Wang, Kun,Cui, Zhifeng,Wang, Weixia. 2009

[6]Efficient Agrobacterium-mediated transformation of rice by phosphomannose isomerase/mannose selection. Ding Zai-Song,Zhao Ming,Jing Yu-Xiang,Li Liang-Bi,Kuang Ting-Nin. 2006

[7]Expressing a modified cowpea trypsin inhibitor gene to increase insect tolerance against Pieris rapae in Chinese cabbage. Ma, Xiaoli,Pei, Yanxi,Ma, Xiaoli,Zhu, Zhen,Li, Yane,Yang, Guangdong. 2017

[8]Development and Characterization of Transgenic Sugarcane with Insect Resistance and Herbicide Tolerance. Wang, Wen Zhi,Yang, Ben Peng,Feng, Xiao Yan,Cao, Zheng Ying,Feng, Cui Lian,Wang, Jun Gang,Xiong, Guo Ru,Shen, Lin Bo,Zeng, Jun,Zhao, Ting Ting,Zhang, Shu Zhen. 2017

[9]The study on anthocyanin regulatory genes as a visual marker in transformation of common wheat (Triticum aestivum). He Yanli,Zhang Xiaodong,He Yanli,Yang Fengping,Zhang Xiaodong. 2014

[10]Efficient regeneration and genetic transformation platform applicable to five Musa varieties. Liu, Juhua,Gao, Pengzhao,Zhang, Jing,Jia, Caihong,Zhang, Jianbin,Hu, Wei,Xu, Biyu,Jin, Zhiqiang,Sun, Peiguang,Wang, Jiashui,Jin, Zhiqiang,Sun, Xiuxiu. 2017

[11]Approaches to improve the transgenic efficiency and to rescue seedlings from hyperhydricity for rapeseed (Brassica napus). Ding, Yongqiang,Zhang, Dingyu,Yin, Guoying,Wang, Wenjing,Ding, Yongqiang,Zhang, Dingyu,Yin, Guoying,Wang, Wenjing.

[12]Codon-modifications and an endoplasmic reticulum-targeting sequence additively enhance expression of an Aspergillus phytase gene in transgenic canola. Peng, RH,Yao, QH,Xiong, AS,Cheng, ZM,Li, Y. 2006

[13]Agrobacterium-mediated genetic transformation of peanut and the efficient recovery of transgenic plants. Chen, Mingna,Yang, Qingli,Wang, Tong,Chen, Na,Pan, Lijuan,Chi, Xiaoyuan,Yang, Zhen,Wang, Mian,Yu, Shanlin,Chi, Xiaoyuan. 2015

[14]Construction and genetic analysis of anthocyanin-deficient mutants induced by T-DNA insertion in 'Tsuda' turnip (Brassica rapa). Wang, Xiuzhi,Wang, Yu,Chen, Bowei,Fang, Zhiyuan,Li, Yuhua,Wang, Yu,Li, Yuhua,Wang, Xiuzhi,Kawabata, Saneyuki,Fang, Zhiyuan. 2017

[15]An efficient Agrobacterium-mediated transformation method for the edible mushroom Hypsizygus marmoreus. Zhang, Jin Jing,Shi, Liang,Sun, Yun Qi,Zhao, Ming Wen,Ren, Ang,Feng, Zhi Yong,Zhang, Jin Jing,Chen, Hui,Sun, Yun Qi,Chen, Ming Jie,Wang, Hong,Feng, Zhi Yong,Zhang, Jin Jing,Chen, Hui,Sun, Yun Qi,Chen, Ming Jie,Wang, Hong,Feng, Zhi Yong.

[16]High-efficiency Agrobacterium-mediated transformation of Lotus corniculatus L. using phosphomannose isomerase positive selection. Guo, Qianqian,Ma, Jiangtao,Yuan, Bei,Wu, Yanmin,Guo, Qianqian,Ma, Jiangtao,Zhou, Meiliang.

[17]Studies on Agrobacterium-mediated genetic transformation of embryogenic suspension cultures of sweet potato. Xing, Yu-Jun,Ji, Qin,Luo, Yu-Ming,Xing, Yu-Jun,Yang, Qing,Li, Qiang,Wang, Xin. 2008

[18]Studies on transfer of Bt gene into Glycine max. Su, YH,Wang, HL,Yu, MM,Lu, DY,Guo, SD. 1999

[19]Multiple tissue-specific expression of rice seed-shattering gene SH4 regulated by its promoter pSH4. Yan, Huanxin,Ma, Li,Wang, Zhe,Lu, Bao-Rong,Lin, Zhimin,Su, Jun. 2015

[20]Expression of a novel bi-directional Brassica napus promoter in soybean. Chennareddy, Siva,Cicak, Toby,Clark, Lauren,Russell, Sean,Skokut, Michiyo,Beringer, Jeffrey,Jia, Yi,Gupta, Manju,Yang, Xiaozeng.

作者其他论文 更多>>