Tolerance to aluminum in genetically modified tobacco plants
Tóm tắt
Từ khóa
Tài liệu tham khảo
Bragg, J. R., Prince, R. C., Harner, E. J., and Atlas, R. M., Effectiveness of Bioremediation for The Exxon Valdez Oil Spill, Nature, 1994, vol. 368, pp. 413–418.
Dyke, M. I., Gulley, S. L., Lee, H., and Trevors, J. T., Evaluation of Microbial Surfactants for Recovery of Hydrophobic Pollutants from Soil, J. Ind. Microbiol., 1993, vol. 11, pp. 163–170.
Scheibenbogen, K., Zytner, R. G., Lee, H., and Trevors, J. T., Enhanced Removal of Selected Hydrocarbons from Soil by Pseudomonas aeruginosa UG2 Biosurfactants and Soil Chemical Surfactants, J. Chem. Technol. and Biotechnol., 1994, vol. 59, pp. 53–59.
Dave, H., Ramakrishna, C., Bhatt, B. D., and Dasai, J. D., Biodegradation of Slop Oil from a Petrochemical Industry and Bioreclamation of Slop Oil Contaminated Soil, World J. Microbiol. Biotechnol., 1994, vol. 10, pp. 653–656.
Miller, R. M., Biosurfactant-Facilitated Remediation of Metal Contaminated Spills, Environ. Health Persp., 1995, vol. 103, pp. 59–62.
Herman, D. C., Artiola, J. F., and Miller, R. M., Removal of Cadmium, Lead, and Zinc from Soil by a Rhamnolipid Biosurfactant, Environm. Sci. and Technol., 1995, vol. 29, pp. 2280–2285.
Kim, B. S., Lee, J. Y., and Hwang, B. K., In Vivo Control and In Vitro Antifungal Activity of Rhamnolipid B, a Glycolipid Antibiotic against Phytophthora capsici and Colletotrichum orbiculare, Pest. Manag. Sci., 2000, vol. 56, no. 12, pp. 1029–1035.
Lang, S. and Wullbrandt, D., Rhamnose Lipid Biosynthesis, Microbial Production, and Application Potential, Appl. Microbiol. Biotechnol., 1999, vol. 51, pp. 22–32.
Rugh, C. L., Senecoff, J. F., Meagher, R. B., and Merkle, S. A., Development of Transgenic Yellow Poplar for Mercury Phytoremediation, Nat. Biotechnol., 1998, vol. 16, pp. 925–928.
Mejare, M. and Bulow, L., Metal-Binding Proteins and Peptides in Bioremediation and Phytoremediation of Heavy Metals, Trends Biotechnol., 2001, vol. 19, pp. 67–73.
Brichkova, G. G., Sorokin, A. P., Maneshina, T. V., Kurman, P. V., Krasovskaya, L. I., Johns, J. J., and Kartel’, N. A., Development of Transgenic Plants Arabidopsis thaliana for the Purpose of Efficient Remediation of Oil Hydrocarbon-Polluted Areas, Dokl. NAS Belarus, 2003, vol. 47, pp. 72–75.
Brychkova, G. G., Sorokin, A. P., and Kartel, N. A., Bioremediation with Ecologically Safe Plants, NATO Science Series, Series 1: Life and Behavioral Science IOS Press, 2004, vol. 359, pp. 147–158.
Brichkova, G. G., Development of Transgenic Plants Carrying Genes for Biosynthesis of Rhamnolipids that Display High Resistance to High Metal Concentrations and Stimulate Oil Product Degradation, Cand. Sci. (Biol.) Dissertation, Minsk, 2003.
Potrycus, I. and Schillito, R. D., Protoplast: Isolation, Culture, Plant Regeneration, Plant Mol. Biol., 1986, vol. 118, p. 549.
De Neef, V., Caeneghem, W. V., Marichal, M., et al., A Polymerase Chain Reaction-Based Screening Method for Transgenic Arabidopsis, Genet. Anal.: Biomol. Engineer., 1999, vol. 15, pp. 1–4.
Southern, E. M., Detection of Specific Sequences among DNA Fragments Separated by Gel Electrophoresis, J. Mol. Biol., 1975, vol. 98, pp. 503–517.
Goda, S. K. and Minton, N. P., A Simple Procedure for Gel Electrophoresis and Northern Blotting of RNA, Nucl. Acid Res., 1995, vol. 23, pp. 3357–3358.
Wild, M., Caro, A. D., Hernandez, A. L. et al., Selection and Partial Characterization of a Pseudomonas aeruginosa Mono-Rhamnolipid Deficient Mutant, FEMS Microbiol. Lett., 1997, vol. 153, pp. 279–285.
