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Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum

The potential impact of transgene escape on the environment and food safety is a major concern to the scientists and public. This work aimed to assess the effect of intein-mediated gene splitting on containment of transgene flow. Two fusion genes, EPSPSn-In and Ic-EPSPSc, were constructed and integr...

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Autores principales: Wang, Xu-Jing, Jin, Xi, Dun, Bao-Qing, Kong, Ning, Jia, Shi-Rong, Tang, Qiao-Ling, Wang, Zhi-Xing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4051838/
https://www.ncbi.nlm.nih.gov/pubmed/24915192
http://dx.doi.org/10.1371/journal.pone.0099651
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author Wang, Xu-Jing
Jin, Xi
Dun, Bao-Qing
Kong, Ning
Jia, Shi-Rong
Tang, Qiao-Ling
Wang, Zhi-Xing
author_facet Wang, Xu-Jing
Jin, Xi
Dun, Bao-Qing
Kong, Ning
Jia, Shi-Rong
Tang, Qiao-Ling
Wang, Zhi-Xing
author_sort Wang, Xu-Jing
collection PubMed
description The potential impact of transgene escape on the environment and food safety is a major concern to the scientists and public. This work aimed to assess the effect of intein-mediated gene splitting on containment of transgene flow. Two fusion genes, EPSPSn-In and Ic-EPSPSc, were constructed and integrated into N. tabacum, using Agrobacterium tumefaciens-mediated transformation. EPSPSn-In encodes the first 295 aa of the herbicide resistance gene 5-enolpyruvyl shikimate-3-phosphate synthase (EPSPS) fused with the first 123 aa of the Ssp DnaE intein (In), whereas Ic-EPSPSc encodes the 36 C-terminal aa of the Ssp DnaE intein (Ic) fused to the rest of EPSPS C terminus peptide sequences. Both EPSPSn-In and Ic-EPSPSc constructs were introduced into the same N. tabacum genome by genetic crossing. Hybrids displayed resistance to the herbicide N-(phosphonomethyl)-glycine (glyphosate). Western blot analysis of protein extracts from hybrid plants identified full-length EPSPS. Furthermore, all hybrid seeds germinated and grew normally on glyphosate selective medium. The 6-8 leaf hybrid plants showed tolerance of 2000 ppm glyphosate in field spraying. These results indicated that functional EPSPS protein was reassembled in vivo by intein-mediated trans-splicing in 100% of plants. In order to evaluate the effect of the gene splitting technique for containment of transgene flow, backcrossing experiments were carried out between hybrids, in which the foreign genes EPSPSn-In and Ic-EPSPSc were inserted into different chromosomes, and non-transgenic plants NC89. Among the 2812 backcrossing progeny, about 25% (664 plantlets) displayed glyphosate resistance. These data indicated that transgene flow could be reduced by 75%. Overall, our findings provide a new and highly effective approach for biological containment of transgene flow.
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spelling pubmed-40518382014-06-18 Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum Wang, Xu-Jing Jin, Xi Dun, Bao-Qing Kong, Ning Jia, Shi-Rong Tang, Qiao-Ling Wang, Zhi-Xing PLoS One Research Article The potential impact of transgene escape on the environment and food safety is a major concern to the scientists and public. This work aimed to assess the effect of intein-mediated gene splitting on containment of transgene flow. Two fusion genes, EPSPSn-In and Ic-EPSPSc, were constructed and integrated into N. tabacum, using Agrobacterium tumefaciens-mediated transformation. EPSPSn-In encodes the first 295 aa of the herbicide resistance gene 5-enolpyruvyl shikimate-3-phosphate synthase (EPSPS) fused with the first 123 aa of the Ssp DnaE intein (In), whereas Ic-EPSPSc encodes the 36 C-terminal aa of the Ssp DnaE intein (Ic) fused to the rest of EPSPS C terminus peptide sequences. Both EPSPSn-In and Ic-EPSPSc constructs were introduced into the same N. tabacum genome by genetic crossing. Hybrids displayed resistance to the herbicide N-(phosphonomethyl)-glycine (glyphosate). Western blot analysis of protein extracts from hybrid plants identified full-length EPSPS. Furthermore, all hybrid seeds germinated and grew normally on glyphosate selective medium. The 6-8 leaf hybrid plants showed tolerance of 2000 ppm glyphosate in field spraying. These results indicated that functional EPSPS protein was reassembled in vivo by intein-mediated trans-splicing in 100% of plants. In order to evaluate the effect of the gene splitting technique for containment of transgene flow, backcrossing experiments were carried out between hybrids, in which the foreign genes EPSPSn-In and Ic-EPSPSc were inserted into different chromosomes, and non-transgenic plants NC89. Among the 2812 backcrossing progeny, about 25% (664 plantlets) displayed glyphosate resistance. These data indicated that transgene flow could be reduced by 75%. Overall, our findings provide a new and highly effective approach for biological containment of transgene flow. Public Library of Science 2014-06-10 /pmc/articles/PMC4051838/ /pubmed/24915192 http://dx.doi.org/10.1371/journal.pone.0099651 Text en © 2014 Wang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Wang, Xu-Jing
Jin, Xi
Dun, Bao-Qing
Kong, Ning
Jia, Shi-Rong
Tang, Qiao-Ling
Wang, Zhi-Xing
Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum
title Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum
title_full Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum
title_fullStr Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum
title_full_unstemmed Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum
title_short Gene-Splitting Technology: A Novel Approach for the Containment of Transgene Flow in Nicotiana tabacum
title_sort gene-splitting technology: a novel approach for the containment of transgene flow in nicotiana tabacum
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4051838/
https://www.ncbi.nlm.nih.gov/pubmed/24915192
http://dx.doi.org/10.1371/journal.pone.0099651
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