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Construction of Marker-Free GFP Transgenic Tobacco by Cre/lox Site-Specific Recombination System 被引量:4

Construction of Marker-Free GFP Transgenic Tobacco by Cre/lox Site-Specific Recombination System
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摘要 Marker-free GFP transgenic tobacco plants were constructed based on Cre/lox site-specific recombination system. A GFP gene was introduced into the tobacco genome using the Bar gene as a linked selectable marker flanked by recombination sites in a directed orientation. The Bar gene expression box was subsequently excised from the plant genome by a strategy of Cre gene retransformation. After removal of the Cre-NPT Ⅱ locus by genetic segregation through self-cross, plants that incorporated only the GFP transgene were obtained. Transgenic tobacco plants mediated by Agrobacterium tumefaciens were obtained, which resisted herbicide Basta and GFP expressed well, then the Cre gene was subsequently introduced into 5 plants of them, respectively, by retransformation. The leaf disks from Cre transgenic plants were used to test the resistance to Basta on the medium with 8 mg L-1 of PPT. The results showed that few discs were able to regenerate normally, and the excision at 76-100% efficiency depended on individual retransformation events. Evidence for a precise recombination event was confirmed by cloning the nucleotides sequence surrounding the lox sites of the Basta sensitive plants. The result indicated that the excision event in the recombination sites was precise and conservative, without loss or alteration of any submarginal nucleotides of the recombination sites. Bar gene excised plants were selfpollinated to allow segregation of the GFP gene from the Cre-NPT Ⅱ locus. The progenies from self-pollinated plants were scored for Kan senstivity, then the segregation of GFP gene from Cre-NPT Ⅱ locus in the Kan senstive plants were confirmed by PCR analysis subsequently. Hence, constructing marker-free transgenic tobacco plants by Cre/lox sitespecific recombination system was reliable, and the strategy presented here should be applicable to other plants for the construction of marker-free transgenic plants as well. Marker-free GFP transgenic tobacco plants were constructed based on Cre/lox site-specific recombination system. A GFP gene was introduced into the tobacco genome using the Bar gene as a linked selectable marker flanked by recombination sites in a directed orientation. The Bar gene expression box was subsequently excised from the plant genome by a strategy of Cre gene retransformation. After removal of the Cre-NPT Ⅱ locus by genetic segregation through self-cross, plants that incorporated only the GFP transgene were obtained. Transgenic tobacco plants mediated by Agrobacterium tumefaciens were obtained, which resisted herbicide Basta and GFP expressed well, then the Cre gene was subsequently introduced into 5 plants of them, respectively, by retransformation. The leaf disks from Cre transgenic plants were used to test the resistance to Basta on the medium with 8 mg L-1 of PPT. The results showed that few discs were able to regenerate normally, and the excision at 76-100% efficiency depended on individual retransformation events. Evidence for a precise recombination event was confirmed by cloning the nucleotides sequence surrounding the lox sites of the Basta sensitive plants. The result indicated that the excision event in the recombination sites was precise and conservative, without loss or alteration of any submarginal nucleotides of the recombination sites. Bar gene excised plants were selfpollinated to allow segregation of the GFP gene from the Cre-NPT Ⅱ locus. The progenies from self-pollinated plants were scored for Kan senstivity, then the segregation of GFP gene from Cre-NPT Ⅱ locus in the Kan senstive plants were confirmed by PCR analysis subsequently. Hence, constructing marker-free transgenic tobacco plants by Cre/lox sitespecific recombination system was reliable, and the strategy presented here should be applicable to other plants for the construction of marker-free transgenic plants as well.
出处 《Agricultural Sciences in China》 CAS CSCD 2008年第9期1061-1070,共10页 中国农业科学(英文版)
基金 the National Natural Science Foundation of China (30200185) the Science Foundation of Committee of Education of Chongqing Municipality,China (030208)
关键词 Cre/lox site-specific recombination system marker-free transgenic tobacco GFP Cre/lox site-specific recombination system, marker-free transgenic tobacco, GFP
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  • 1CHEN Xiuhua,LIU Qiaoquan,WANG Zongyang,WANG Xingwen,CAI Xiuling,ZHANG Jingliu,GU Minghong.Introduction of antisense waxy gene into main parent lines of indica hybrid rice[J].Chinese Science Bulletin,2002,47(14):1192-1197. 被引量:6
  • 2张秀春,林俊芳,郭丽琼.Δ~6-脂肪酸脱氢酶基因克隆及其共转化表达载体的构建[J].热带作物学报,2004,25(4):63-67. 被引量:4
  • 3张秀春,郭丽琼,吴坤鑫,林俊扬,林俊芳.双T-DNA表达载体转化大豆的研究[J].大豆科学,2005,24(4):291-295. 被引量:14
  • 4贾士荣.转基因植物食品中标记基因的安全性评价[J].中国农业科学,1997,30(2):1-15. 被引量:140
  • 5Afolabi A S,Worland B,Snape J W,Vain P.A large-scale study of rice plants transformed with different T-DNAs provides new insights into locus composition and T-DNA linkage configurations.Theoretical and Applied Genetics,2004,109:815-826.
  • 6De Buck S,Jacobs A,Van Montagu M,Depicker A.The DNA sequences of T-DNA junctions suggest that complex T-DNA loci are formed by a recombination process resembling T-DNA integration.The Plant Journal,1999,20:295-304.
  • 7De Neve M,De Buck S,Jacobs A,Van Montagu M,Depicker A.T-DNA integration patterns in co-transformed plant cells suggest that T-DNA repeats originate from co-integration of separate T-DNAs.The Plant Journal,1997,11:15-29.
  • 8Tu J,Ona I,Zhang Q,Mew T W,Kush G S,Datta S K.Transgenic rice variety ‘IR72' with Xa21 is resistance to bacterial blight.Theoretical and Applied Genetics,1998,97:31-36.
  • 9Zhang S P,Song W Y,Chen L L,Ruan D,Taylor N,Ronald P,Beachy R,Fauquet C.Transgenic elite Indica rice varieties,resistance to Xa21 Xanthomonas oryzae pv.oryzae.Molecular Breeding,1998,4:551-558.
  • 10Lee S W,Choi S H,Han S S,Lee D G,Lee B Y.Distribution of Xanthomonas oryzae pv.oryzae strains virulent to Xa21 in Korea.Phytopathology,1999,9:928-933.

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