Issue
Korean Journal of Chemical Engineering,
Vol.17, No.5, 541-547, 2000
Investigations on the Growth of Rhodococcus Rubra in Relation to the Formation of Stable Biological Foams
The growth characteristics of a foam-forming species, Rhodococcus rubra were studied on different substrates. The basic medium contained Czapek (3.34%), yeast extract (0.2%), potassium dihydrogen phosphate (0.12%), dipotassium hydrogen phosphate (0.25%) and ammonium chloride (0.1%). This was supplemented with varying concentrations of glucose (0-2%). The same basic medium was also used to examine the growth of R. rubra in combination with varying concentration of n-hexadecane (0.0-0.5%) as a source of energy while varying the concentration of ammonium chloride in the range 1-3 g l(-1). Studies based on determining the biomass concentration, the surface activity related to the cell suspensions and measuring the variations in broth pH revealed that glucose encouraged the growth of R. rubra, compared to the control. However, increasing the glucose concentration from 0.1 to 2.0% had no further effect on growth. The surface activity of the cell suspensions increased with increasing glucose concentration. Results similar to glucose were exhibited by the addition of n-hexadecane, suggesting same degree of growth among different concentrations with higher surface activity increasing with increase in substrate concentration. Results have also shown that the pH of all the culture broths decreased as the ammonium chloride concentration increased, suggesting that there was a production of hydrogen ions during the course of its metabolism.
[References]
  1. Aburuwaida AS, Banat IM, Haditirto S, Khamis A, World J. Microbiol. Biotechnol., 7, 53, 1991
  2. Anon, Water Sew. Wrks., 116, 213, 1969
  3. Cairns WL, Cooper DG, Zajic JE, Wood JM, Kosairic N, Appl. Environ. Microbiol., 43, 362, 1982
  4. Carliell CM, Barclay SJ, Naidoo N, Buckley CA, Mulholland DA, Senior E, Water SA, 21, 61, 1995
  5. Catchpolem JR, Cooper JL, Water Res., 6, 1459, 1972
  6. Cooper DG, Zajic JE, Adv. Appl. Microbiol., 26, 229, 1980
  7. Gottschalk G, "Bacterial Metabolism," Springer-Verlag, Berlin, 118, 1979
  8. Gray NC, Stewart AL, Carns WL, Kosairic N, Biotechnol. Lett., 6, 419, 1984
  9. Greenfield PF, Blackall LL, Pettigrew AE, Hayward AC, "Activated Scum Problems in Activated Sludge Plants," Report No. 10, Dept. of Chemical Engineering, University of Queensland, 1985
  10. Iwahori K, Taki H, Miyata N, Fujita M, J. Ferment. Bioeng., 84(1), 98, 1997
  11. Iwahori K, Wang M, Taki H, Fujita M, J. Ferment. Bioeng., 79(2), 186, 1995
  12. Khan AR, Forster CF, Environ. Technol., 12, 271, 1991
  13. Khan AR, Forster CF, Environ. Technol. Lett., 9, 1349, 1988
  14. Khan AR, Forster CF, Environ. Technol., 17, 737, 1996
  15. Mercade ME, Monleon L, de Andres C, Rodon I, Martinez E, Espuny MJ, Manresa A, J. Appl. Bact., 81, 161, 1996
  16. Mousa L, Forster CF, Water Res., 32, 3795, 1998
  17. Neufeld RJ, Zajic JE, Biotechnol. Bioeng., 26, 1108, 1984
  18. Ramsay B, McCarthy J, Can. J. Microbiol., 34, 1209, 1988
  19. Rossetti S, Christensson C, Blackall LL, Tandoi V, J. Appl. Microbiol., 82, 405, 1997
  20. Slijkhuis H, Groenestijn JW, Klystra DJ, J. Gen. Microbiol., 130, 2035, 1984
  21. Soddell JA, Seviour RJ, Water Res., 29, 1555, 1995
  22. Stratton H, Seviour B, Brooks P, Water Sci. Technol., 37, 503, 1998
  23. Sunairi M, Iwabuchi N, Yoshizawa Y, Murooka H, Morisaki H, Nakajima M, J. Appl. Microbiol., 82, 204, 1997
  24. Takeda M, Koizumi J, Matsuoka H, Hikuma M, J. Ferment. Bioeng., 74, 408, 1992
  25. Zajic JE, Guignard H, Gerson DF, Biotechnol. Bioeng., 19, 1285, 1977