A large-scale study of rice plants transformed with different T-DNAs provides new insights into locus composition and T-DNA linkage configurations

被引:71
作者
Afolabi, AS [1 ]
Worland, B [1 ]
Snape, JW [1 ]
Vain, P [1 ]
机构
[1] John Innes Ctr, Norwich NR4 7UH, Norfolk, England
关键词
D O I
10.1007/s00122-004-1692-y
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Transgenic locus composition and T-DNA linkage configuration were assessed in a population of rice plants transformed using the dual-binary vector system pGreen Transgenic locus composition and T-DNA linkage configuration were assessed in a population of rice plants transformed using the dual-binary vector system pGreen (T-DNA containing the bar and gusgenes)/pSoup (T-DNA containing the aphIV and gfp genes). Transgene structure, expression and inheritance were analysed in 62 independently transformed plant lines and in around 4,000 progeny plants. The plant lines exhibited a wide variety of transgenic locus number and composition. The most frequent form of integration was where both T-DNAs integrated at the same locus (56% of loci). When single-type T-DNA integration occurred (44% of loci), pGreen T-DNA was preferentially integrated. In around half of the plant lines (52%), the T-DNAs integrated at two independent loci or more. In these plants, both mixed and single-type T-DNA integration often occurred concurrently at different loci during the transfon-nation process. Non-intact T-DNAs were present in 70-7 8% of the plant lines causing 14-2 1 % of the loci to contain only the mid to right border part of a T-DNA. In 53-66% of the loci, T-DNA integrated with vector backbone sequences. Comparison of transgene presence and expression in progeny plants showed that segregation of the transgene phenotype was not a reliable indicator of either transgene inheritance or T-DNA linkage, as only 60-80% of the transgenic loci were detected by the expression study. Co-expression (28% of lines) and backbone transfer (53-66% of loci) were generally a greater limitation to the production of marker-free T, plants expressing the gene of interest than co-transfonnation (71% of lines) and unlinked integration (44% of loci).T-DNA containing the bar and gus-genes)/pSoup (T-DNA containing the aphIV and g(p genes). Transgene structure, expression and inheritance were analysed in 62 independently transformed plant lines and in around 4,000 progeny plants. The plant lines exhibited a wide variety of transgenic locus number and composition. The most frequent form of integration was where both T-DNAs integrated at the same locus (56% of loci). When single-type T-DNA integration occurred (44% of loci), pGreen T-DNA was preferentially integrated. In around half of the plant lines (52%), the T-DNAs integrated at two independent loci or more. In these plants, both mixed and single-type T-DNA integration often occurred concurrently at different loci during the transformation process. Non-intact T-DNAs were present in 70-78% of the plant lines causing 14-21% of the loci to contain only the mid to right border part of a T-DNA. In 53-66% of the loci, T-DNA integrated with vector backbone sequences. Comparison of transgene presence and expression in progeny plants showed that segregation of the transgene phenotype was not a reliable indicator of either transgene inheritance or T-DNA linkage, as only 60-80% of the transgenic loci were detected by the expression study. Co-expression (28% of lines) and backbone transfer (53-66% of loci) were generally a greater limitation to the production of marker-free T, plants expressing the gene of interest than co-transformation (71% of lines) and unlinked integration (44% of loci).
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页码:815 / 826
页数:12
相关论文
共 38 条
[31]   Highly efficient production and characterization of T-DNA plants for rice (Oryza sativa L.) functional genomics [J].
Sallaud, C. ;
Meynard, D. ;
van Boxtel, J. ;
Gay, C. ;
Bes, M. ;
Brizard, J. P. ;
Larmande, P. ;
Ortega, D. ;
Raynal, M. ;
Portefaix, M. ;
Ouwerkerk, P. B. F. ;
Rueb, S. ;
Delseny, M. ;
Guiderdoni, E. .
THEORETICAL AND APPLIED GENETICS, 2003, 106 (08) :1396-1408
[32]   Single-copy transgenic wheat generated through the resolution of complex integration patterns [J].
Srivastava, V ;
Anderson, OD ;
Ow, DW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (20) :11117-11121
[33]   Efficient gene targeting by homologous recombination in rice [J].
Terada, R ;
Urawa, H ;
Inagaki, Y ;
Tsugane, K ;
Iida, S .
NATURE BIOTECHNOLOGY, 2002, 20 (10) :1030-1034
[34]   Transgene behaviour in populations of rice plants transformed using a new dual binary vector system: pGreen/pSoup [J].
Vain, P ;
Afolabi, AS ;
Worland, B ;
Snape, JW .
THEORETICAL AND APPLIED GENETICS, 2003, 107 (02) :210-217
[35]   Transgene behaviour across two generations in a large random population of transgenic rice plants produced by particle bombardment [J].
Vain, P ;
James, VA ;
Worland, B ;
Snape, JW .
THEORETICAL AND APPLIED GENETICS, 2002, 105 (6-7) :878-889
[36]  
Xing AQ, 2000, IN VITRO CELL DEV-PL, V36, P456
[37]  
YODER JI, 1994, BIO-TECHNOL, V12, P263, DOI 10.1038/nbt0394-263
[38]   Intrachromosomal recombination between attP regions as a tool to remove selectable marker genes from tobacco transgenes [J].
Zubko, E ;
Scutt, C ;
Meyer, P .
NATURE BIOTECHNOLOGY, 2000, 18 (04) :442-445