Optimum Conditions of Freezing Lyophilization and Bioluminescence Activity Recovery for Environmental Applications Using a Recombinant Strain
Ko Kyung-Seok;Kim Myung-Hee;Kong In-Chul;
Geological & Environmental Hazards Division, Korea Institute of Geoscience & Mineral Resources (KIGAM);School of Construction and Environmental Engineering, Yeungnam University;School of Construction and Environmental Engineering, Yeungnam University;
6. 이진흥, 김윤신, 류영태, 유인식, 1997, 석유화학단지의 휘발성 유기화합물로 인한 인체 위해도 평가에 관한 연구, 한국대기보전학회지, 13(4), 257-267
7. Assinder, S.J. and Williams, P.A., 1990, The TOL Plasmid: Determinants of the catabolism of toluene and the xylenes, Adv. Microbiol. Phys., 31, 2-69
8. Burlage. R.S., Palumbo, A.V., Heitzer, A., and Sayler, G., 1994, Bioluminescent reporter bacteria detect contaminants in soil samples, Appl. Biochem. Biotech., 45/46, 731-740
9. Chatterjee, J. and Meighen, E.A., 1995, Biotechnological application of bacterial biolurninescenec (lux) genes, Photochem. Photobiol., 62(4), 641-650
10. Gheena, R.L., 1994, Culture Preservation, In: P. Gerhardt et al.(ed), Methods for General and Molecular Bacteriology, American Society for Microbiology, Washington D.C., p. 278-292
11. Gu, M.B., Choi, S.H., and Kim, S.W., 2001, Some observations in freeze-drying of recombinant bioluminescent Escherichia coli for toxicity monitoring, J. Biotechnol., 88, 95-105
12. Holtel, A., Marques, S., Mohler, I., Jakubzik, U., and Timmis, K.N., 1994, Carbon source-dependent inhibition of xyl operon expression of the Pseudomonas putida TOL Plasmid, J. Bacteriol., 176(6), 1773-1776
13. King, J.M.H., Digrazia, P.M., Burlage, B., Sanseverino, J., Dunbar, P., Larimer, F., and Sayler, GS., 1990, Rapid, sensitive bioluminescent reporter technology for naphthalene exposure and biodegradation, Science, 249, 778-781
14. Miura, K., Inouye, S., and Nakazawa, A., 1998, The rpoS gene regulates OP2, an operon for the lower pathway of xylene catabolism on the TOL plasmid, and the stress response in Pseudomonas putida mt-2, Mol. Gen. Genet., 259, 72-78
15. Morris, G.J., Coulson, G.E., and Clarke, K.J., 1988, Freezing injury in Saccharomyces cerevisiae: The effect of growth conditions, Cryobiology, 25, 471-482
16. Nealson, K.H. and Hastings, J.W., 1979, Bacterial bioluminescence: Its control and ecological significance, Microbiol. Rev., December, 496-518
17. Selifonova, O.S., Burlage, R.S., and Barkay, T., 1993, Bioluminescence sensors for detection of bioavailable Hg(II) in the environment, Appl. Environ. Microbiol., 59(9), 3038-3090
18. Steinberg, S.M. and Poziomek, E.J., 1995, A review of environmental application of bioluminescence measurements, Chemosphere, 30(11), 2155-2197
19. Tyagi, R.D. and Vembu K., 1990, Wastewater Treatment by Immobilized Cells, CRC Press, Boca Raton, p. 281
20. Willardson, B.M., Wilkins, J.P., Rand, T.A., Schupp, J.M., Hill, K.K., Keirn, P., and Jackson, P.J., 1998, Development and testing of a bacterial biosensor for toluene-based environmental contaminants, Appl. Environ. Microbiol., 64(3), 1006-1012