Generation of marker-free transgenic hexaploid wheat via an Agrobacterium-mediated co-transformation strategy in commercial Chinese wheat varieties

文献类型: 外文期刊

第一作者: Wang, Ke

作者: Wang, Ke;Liu, Huiyun;Du, Lipu;Ye, Xingguo

作者机构:

关键词: hexaploid wheat;two independent T-DNA vectors;co-transformation;marker-free transgenic plants;transgene silencing

期刊名称:PLANT BIOTECHNOLOGY JOURNAL ( 影响因子:9.803; 五年影响因子:9.555 )

ISSN: 1467-7644

年卷期: 2017 年 15 卷 5 期

页码:

收录情况: SCI

摘要: Genotype specificity is a big problem lagging the development of efficient hexaploid wheat transformation system. Increasingly, the biosecurity of genetically modified organisms is garnering public attention, so the generation of marker-free transgenic plants is very important to the eventual potential commercial release of transgenic wheat. In this study, 15 commercial Chinese hexaploid wheat varieties were successfully transformed via an Agrobacterium-mediated method, with efficiency of up to 37.7%, as confirmed by the use of Quickstix strips, histochemical staining, PCR analysis and Southern blotting. Of particular interest, marker-free transgenic wheat plants from various commercial Chinese varieties and their F-1 hybrids were successfully obtained for the first time, with a frequency of 4.3%, using a plasmid harbouring two independent T-DNA regions. The average co-integration frequency of the gus and the bar genes located on the two independent T-DNA regions was 49.0% in T-0 plants. We further found that the efficiency of generating marker-free plants was related to the number of bar gene copies integrated in the genome. Marker-free transgenic wheat plants were identified in the progeny of three transgenic lines that had only one or two bar gene copies. Moreover, silencing of the bar gene was detected in 30.7% of T-1 positive plants, but the gus gene was never found to be silenced in T-1 plants. Bisulphite genomic sequencing suggested that DNA methylation in the 35S promoter of the bar gene regulatory region might be the main reason for bar gene silencing in the transgenic plants.

分类号:

  • 相关文献

[1]Marker-free, tissue-specific expression of Cry1Ab as a safe transgenic strategy for insect resistance in rice plants. Qi, Yongbin,Chen, Lei,Jin, Qingsheng,Zhang, Xiaoming,Qi, Yongbin,He, Zuhua,He, Xiuling,He, Zuhua. 2013

[2]Multiple transgenes Populus xeuramericana 'Guariento' plants obtained by biolistic bombardment. Wang JianGe,Su XiaoHua,Ji LiLi,Zhang BingYu,Hu ZanMin,Huang RongFeng,Tian YingChuan. 2007

[3]Development and drought tolerance assay of marker-free transgenic rice with OsAPX2 using biolistic particle-mediated co-transformation. Feng, Dan,Wang, Yanwei,Wu, Jinxia,Lu, Tiegang,Zhang, Zhiguo. 2017

[4]Excision of a selectable marker in transgenic lily (Sorbonne) using the Cre/loxP DNA excision system. Li, Sh.,Du, Y. -P.,Wang, Zh. -X.,Jia, G. -X.,Li, Sh.,Wu, Zh. -Y.,Huang, C. -L.,Zhang, X. -H.. 2013

[5]Generation of selectable marker-free transgenic rice resistant to chewing insects using two co-transformation systems. Yu, Hengxiu,Wang, Ling,Zhao, Zhipeng,Gong, Zhiyun,Tang, Shuzhu,Liu, Qiaoquan,Gu, Minghong,Yao, Quanhong,Zhao, Zhipeng,Wang, Ling. 2009

[6]Green fluorescent protein as a vital elimination marker to easily screen marker-free transgenic progeny derived from plants co-transformed with a double T-DNA binary vector system. Chen, SB,Li, XG,Liu, X,Xu, HL,Meng, K,Xiao, GF,Wei, XL,Wang, F,Zhu, Z. 2005

[7]Agrobacterium-mediated co-transformation of multiple genes in upland cotton. Li, Fei-Fei,Wu, Shen-Jie,Chen, Tian-Zi,Zhang, Jie,Wang, Hai-Hai,Guo, Wang-Zhen,Zhang, Tian-Zhen,Wu, Shen-Jie. 2009

[8]Complementation and expression analysis of SoRab1A and SoRab2A in sugarcane demonstrates their functional diversification. Zhang, Jia-Ming,Sylvester, Anne W.,Li, Ding-Qin,Sun, Xue-Piao. 2006

[9]Possible origin of Triticum petropavlovskyi based on cytological analyses of crosses between T-petropavlovskyi and tetraploid, hexaploid, and synthetic hexaploid (SHW-DPW) wheat accessions. Song, Jun,Du, Wen-Ping,Xu, Li-Yuan,Yu, Gui-Rong,Chen, Qian. 2016

[10]A Wheat Cinnamyl Alcohol Dehydrogenase TaCAD12 Contributes to Host Resistance to the Sharp Eyespot Disease. Rong, Wei,Luo, Meiying,Shan, Tianlei,Wei, Xuening,Du, Lipu,Xu, Huijun,Zhang, Zengyan. 2016

[11]Fine mapping of a large-effect QTL conferring Fusarium crown rot resistance on the long arm of chromosome 3B in hexaploid wheat. Zheng, Zhi,Ma, Jian,Stiller, Jiri,Manners, John M.,Liu, Chunji,Zheng, Zhi,Liu, Chunji,Zheng, Zhi,Liu, Chunji,Zheng, Zhi,Yan, Guijun,Ma, Jian,Zheng, You-Liang,Wei, Yuming,Zhao, Qiang,Feng, Qi,Han, Bin,Choulet, Frederic,Feuillet, Catherine. 2015

[12]Rapid genome evolution revealed by comparative sequence analysis of orthologous regions from four triticeae genomes. Gu, YQ,Coleman-Derr, D,Kong, XY,Anderson, OD.

[13]Inheritance and expression of stripe rust resistance in common wheat (Triticum aestivum) transferred from Aegilops tauschii and its utilization. Yu, Y,Zhang, Y,Hu, XR,Wang, Y,Zhou, YC,Lu, BR.

[14]Allelic variation of polyphenol oxidase (PPO) genes located on chromosomes 2A and 2D and development of functional markers for the PPO genes in common wheat. He, X. Y.,He, Z. H.,Zhang, L. P.,Sun, D. J.,Morris, C. F.,Fuerst, E. P.,Xia, X. C..

[15]Y-type gene specific markers for enhanced discrimination of high-molecular weight glutenin alleles at the Glu-B1 locus in hexaploid wheat. Lei, ZS,Gale, KR,He, ZH,Gianibelli, C,Larroque, O,Xia, XC,Butow, BJ,Ma, W. 2006

[16]Novel DNA variations to characterize low molecular weight glutenin Glu-D3 genes and develop STS markers in common wheat. Zhao, X. L.,Xia, X. C.,He, Z. H.,Lei, Z. S.,Appels, R.,Yang, Y.,Sun, Q. X.,Ma, W..

[17]Loss of chromosomes 2R and 5RS in octoploid triticale selected for agronomic traits. Cheng, ZJ,Murata, M.

作者其他论文 更多>>