Lelivelt Cilia L C, McCabe Matthew S, Newell Christine A, deSnoo C Bastiaan, van Dun Kees M P, Birch-Machin Ian, Gray John C, Mills Kingston H G, Nugent Jacqueline M
Rijk Zwaan Breeding B.V., 1e Kruisweg 9, 4793 RS, Fijnaart, The Netherlands.
Institute of Bioengineering and Agroecology, National University of Ireland, Maynooth, Co. Kildare, Ireland.
Plant Mol Biol. 2005 Aug;58(6):763-774. doi: 10.1007/s11103-005-7704-8.
Although plastid transformation in higher plants was first demonstrated in the early 1990s it is only recently that the technology is being extended to a broader range of species. To date, the production of fertile transplastomic plants has been reported for tobacco, tomato, petunia, soybean, cotton and Lesquerella fendleri (Brassicaceae). In this study we demonstrate a polyethylene glycol-mediated plastid transformation system for lettuce that generates fertile, homoplasmic, plastid-transformed lines. Transformation was achieved using a vector that targets genes to the trnA/trnI intergenic region of the lettuce plastid genome employing the aadA gene as a selectable marker against spectinomycin. Spectinomycin resistance and heterologous gene transcription were shown in T(1) plants derived from self-pollinated primary regenerants demonstrating transmission of the plastid-encoded transgene to the first seed generation. Crossing with male sterile wild-type lettuce showed that spectinomycin resistance was not transmitted via pollen. Constructs containing the gfp gene showed plastid-based expression of green fluorescent protein. The lettuce plastid could have potential both as a production and a delivery system for edible human therapeutic proteins.
尽管高等植物中的质体转化在20世纪90年代初就首次得到证实,但直到最近该技术才被推广到更广泛的物种。迄今为止,已报道了烟草、番茄、矮牵牛、大豆、棉花和费氏莱斯奎勒芥(十字花科)可产生可育的转质体植物。在本研究中,我们展示了一种用于生菜的聚乙二醇介导的质体转化系统,该系统可产生可育的、同质的、质体转化的株系。使用一个载体实现了转化,该载体利用aadA基因作为针对壮观霉素的选择标记,将基因靶向生菜质体基因组的trnA/trnI基因间区域。在自花授粉的初级再生植株产生的T(1)代植株中显示出壮观霉素抗性和异源基因转录,这表明质体编码的转基因传递到了第一代种子。与雄性不育野生型生菜杂交表明,壮观霉素抗性不会通过花粉传递。含有gfp基因的构建体显示出基于质体的绿色荧光蛋白表达。生菜质体作为可食用人类治疗性蛋白质的生产和递送系统可能具有潜力。