Transformation of sweet potato tissues with green-fluorescent protein gene

被引:15
|
作者
Winfield, S
Lawton, R
Daniell, H
Dhir, SK
机构
[1] Ft Valley State Coll, Ft Valley, GA 31030 USA
[2] Univ Cent Florida, Dept Mol Biol & Microbiol, Orlando, FL 32816 USA
关键词
sweet potato; Ipomoea batatas L. (Lam.); green-fluorescent protein; electroporation; particle bombardment; protoplasts; intact cells; stable expression;
D O I
10.1007/s11627-001-0113-z
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The expression of the green-fluorescent protein (GF?), gene from Aequorea victoria (jellyfish) was analyzed by transient and stable expression in, sweet potato Ipomoea batatas L. (Lam.) cv. Beauregard tissues by electroporation. and particle bombardment. Leaf and petiole segments from in vitro-raised young plantlets were used for protoplast isolation and electroporation. Embryogenic callus was also produced from leaf segments for particle bombardment experiments. A buffer solution containing, 1 x 106 protoplasts ml(-1) was mixed with plasmid DNA containing the GFP gene, and electroporated at 375 V cm(-1). Approximately 25-30% of electroporated mesophyll cell protoplasts subsequently cultured in KM8P medium regenerated cell walls after 48, h. Of these, 3% emitted bright green fluorescence when exposed to, UV-blue light at 395 nm. Transformed cells continued to, grow after embedding in KM8P medium solidified with 1.2% SeaPlaque agarose, Stable expression of GFP was observed after 4 wk of culture in approximately 1.0% of the initial GFP positive cells (27.5, GFP positive micro calluses out of 3024 cells which transiently expressed GFP 48 h after electroporation). In a separate experiment, 600-700 bright green spots were observed per plate 48 h after bombarding leaf segments or embryogenic: callus. In bombarded cultures, several stable GFP-expressing sectors were observed in leaf-derived embryogenic callus grown without selection for 4 wk. These results show that GFP gene expression can occur in various sweet potato, tissues, and that it may be a useful screenable marker to, improve transformation efficiency and obtain transgenic sweet potato plants.
引用
收藏
页码:648 / 653
页数:6
相关论文
共 50 条
  • [21] ENERGY-TRANSFER PROTEIN IN COELENTERATE BIOLUMINESCENCE - CHARACTERIZATION OF THE RENILLA GREEN-FLUORESCENT PROTEIN
    WARD, WW
    CORMIER, MJ
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1979, 254 (03) : 781 - 788
  • [22] RETRACTED: A photoactivatable green-fluorescent protein from the phylum Ctenophora (Retracted Article)
    Haddock, Steven H. D.
    Mastroianni, Nadia
    Christianson, Lynne M.
    PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2010, 277 (1685) : 1155 - 1160
  • [23] Computational prediction of the tolerance to amino-acid deletion in green-fluorescent protein
    Jackson, Eleisha L.
    Spielman, Stephanie J.
    Wilke, Claus O.
    PLOS ONE, 2017, 12 (04):
  • [24] Ultrafast elementary events in the excited state of wild-type green-fluorescent protein
    Winkler, K
    Seidel, M
    Vöhringer, P
    ULTRAFAST PHENOMENA XIII, 2003, 71 : 611 - 613
  • [25] Green Fluorescent Protein as an Indicator of Cryoinjury in Tissues
    Adam B. Slade
    Lorenzo A. Martínez-Suástegui
    Florian Vié
    Guillermo Aguilar
    Annals of Biomedical Engineering, 2013, 41 : 2676 - 2686
  • [26] Green Fluorescent Protein as an Indicator of Cryoinjury in Tissues
    Slade, Adam B.
    Martinez-Suastegui, Lorenzo A.
    Vie, Florian
    Aguilar, Guillermo
    ANNALS OF BIOMEDICAL ENGINEERING, 2013, 41 (12) : 2676 - 2686
  • [28] Solvothermal synthesis of green-fluorescent carbon nanoparticles and their application
    Wu, Hongyan
    Mi, Congcong
    Huang, Huaiqing
    Han, Baofu
    Li, Jing
    Xu, Shukun
    JOURNAL OF LUMINESCENCE, 2012, 132 (06) : 1603 - 1607
  • [30] Green-fluorescent protein facilitates rapid in vivo detection of genetically transformed plant cells
    A. R. Elliott
    J. A. Campbell
    B. Dugdale
    R. I. S. Brettell
    C. P. L. Grof
    Plant Cell Reports, 1999, 18 : 707 - 714