Müller A, Iser M, Hess D
Institute of Plant Physiology and Biotechnology (260), University of Hohenheim, Stuttgart, Germany.
Transgenic Res. 2001 Oct;10(5):435-44. doi: 10.1023/a:1012029032572.
Stable transformation of sunflower was achieved using a non-meristematic hypocotyl explant regeneration protocol of public inbred HA300B. Uniformly transformed shoots were obtained after co-cultivation with Agrobacterium tumefaciens carrying a gfp (green fluorescent protein) gene containing an intron that blocks expression of gfp in Agrobacterium. Easily detectable, bright green fluorescence of transformed tissues was used to establish an optimal regeneration and transformation procedure. By Southern blot analysis, integration of the gfp and nptll genes was confirmed. Stable transformation efficiency was 0.1%. From 68 T1 plants analyzed, 17 showed transmission of transgene DNA and 15 of them contained the intact gfp gene. Expression of gfp was detected in 10 T1 plants carrying the intact gfp gene using a fluorimetric assay or western blot analysis. Expression of the nptll gene was confirmed in 13 T1 plants. The transformation system enables the rapid transfer of agronomically important genes.
利用公共自交系HA300B的非分生组织下胚轴外植体再生方案实现了向日葵的稳定转化。与携带含有内含子的gfp(绿色荧光蛋白)基因的根癌农杆菌共培养后,获得了均匀转化的芽,该内含子可阻断gfp在农杆菌中的表达。利用转化组织易于检测的亮绿色荧光建立了最佳的再生和转化程序。通过Southern印迹分析,证实了gfp和nptll基因的整合。稳定转化效率为0.1%。在分析的68株T1植株中,17株显示转基因DNA的传递,其中15株含有完整的gfp基因。使用荧光测定法或蛋白质印迹分析在10株携带完整gfp基因的T1植株中检测到gfp的表达。在13株T1植株中证实了nptll基因的表达。该转化系统能够快速转移具有重要农艺性状的基因。