Detection of transgenes in three genetically modified rice lines by fluorescence in situ hybridization

被引:0
作者
Hye Mi Park
Eun Jin Jeon
Nomar Espinosa Waminal
Kong Sik Shin
Soon Jong Kweon
Beom-Seok Park
Seok Cheol Suh
Hyun Hee Kim
机构
[1] Sahmyook University,Plant Biotechnology Institute
[2] National Academy of Agricultural Science,Bio
[3] RDA,safety Division
来源
Genes & Genomics | 2010年 / 32卷
关键词
Detection; FISH; Genetically modified rice; Stacked GM; Transgene;
D O I
暂无
中图分类号
学科分类号
摘要
Fluorescence in situ hybridization (FISH) using T-DNA probes was applied to localize transgenes onto specific chromosomes and confirm the steady integration of transferred genes in three genetically modified (GM) rice lines, LS28 (event LS30-32-20-1), Cry1Ac1 (event C7-1-9-1) and LS28×Cry1Ac1 (event L/C1-1-3-1), which are a rice leaf blast-resistant single trait GM line, a leaf folder-resistant single trait GM line, and a rice leaf blast-resistant and leaf folder-resistant stacked GM hybrid line, respectively. The FISH signals were clearly detected on the arms of one homologous chromosome pair for LS28, and on the arms of another chromosome pair for Cry1Ac1 when using the transformation vector pSBM AtCK containing the rice leaf blast-resistant gene (LS28) and pMJ-RTB containing the leaf folder-resistant gene (mCry1Ac1) as a probe, respectively. As expected, we detected two pairs of FISH signals, each on the arms of different chromosome pairs in the stacked GM rice line LS28×Cry1Ac1 when using both pSBM AtCK and pMJ-RTB as probes. These results indicate that the transgenes are located at specific homologous loci and show position stability among generations in both single trait and stacked GM rice lines. The usefulness and the necessity of FISH to detect inserted genes in transformed plants will be discussed for the purpose of future studies to develop breeding programs and conduct risk assessment of GM plants.
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页码:527 / 531
页数:4
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共 147 条
[31]  
Choi H.W.(undefined)The distribution of transgene sites in barley determined by physical and genetic mapping undefined undefined undefined-undefined
[32]  
Lemaux P.G.(undefined)An efficient method for the physical mapping of trans-genes in barley using undefined undefined undefined-undefined
[33]  
Cho M.J.(undefined) hybridization undefined undefined undefined-undefined
[34]  
Dong J.J.(undefined) methods to localize transgenes and transcripts in interphase nuclei: a tool for transgenic plant research undefined undefined undefined-undefined
[35]  
Kharb P.(undefined)Molecular biological characteristics and analysis using the specific markers of leaf folder-resistant GM rice undefined undefined undefined-undefined
[36]  
Cervera M.(undefined)Qualitative PCR detection of stack gene GM rice (LS28XCry1Ac) developed in Korea undefined undefined undefined-undefined
[37]  
Hall T.C.(undefined)Association of transgene integration sites with chromosome rearrangements in hexaploid oat undefined undefined undefined-undefined
[38]  
Harwood W.A.(undefined)A comparison of transgenic barley lines produced by particle bombardment and Agrobacterium-mediated techniques undefined undefined undefined-undefined
[39]  
Bilham L.J.(undefined)undefined undefined undefined undefined-undefined
[40]  
Travella S.(undefined)undefined undefined undefined undefined-undefined