Toxic Effects of Catechol and 4-Chlorobenzoate Stresses on Bacterial Cells

  • Park, Sang-Ho (Department of Microbiology and Biotechnology, and Research Institute of Genetic Engineering Chungbuk National University) ;
  • Ko, Yeon-Ja (Department of Microbiology and Biotechnology, and Research Institute of Genetic Engineering Chungbuk National University) ;
  • Kim, Chi-Kyung (Department of Microbiology and Biotechnology, and Research Institute of Genetic Engineering Chungbuk National University)
  • Published : 2001.09.01

Abstract

Catechol and 4-chlorobenzoate (4CBA) which are produced from the biodegradation of a variety of aromatic and chloroaromatics have been recognized as toxic to living organisms. In this study, the toxic effects of catechol and 4-chlorobenzoate on gram-positive and -negative bacteria were examined in terms of survival, morphology, change in fatty acids and membrane protein composition. The survival rate of the organisms during treatment for 6 h was decreased, as the concentration of each aromatic was increased. Escherichia coli and Pseudomonas cells treated with catechol and 4CBA at concentrations causing a significant decrease in their viability, showed destructive openings in their cell envelopes. Bacills subtilis treated with the aromatics were reduced in cell size and Staphylococcus aureus cells displayed irregular rod shapes with wrinkled surfaces. The bacterial cells treated with 20 mM catechol showed increases in unsaturated fatty acids, but several saturated fatty acids were decreased. In the E. coli cells treated with 20 mM catechol, inner membrane proteins of 150 kDa and 105 kDa were decreased. But several kinds of the inner and outer membrane proteins were increased. In B. subtilis treated with 20 mM catechol, several kinds of proteins were increased or decreased in membrane proteins.

Keywords

References

  1. Appl.Environ.Microbiol. v.60 Formation of chloro-catechol meta cleavage products by a Pseudomonad during metabolism of monochlorobiphenyls Arensdorf J.J.;D.D.Focht
  2. Protein methods(3rd ed.) Bollag D.M.;M.D.Rozycki;S.J.Edelstein
  3. An assessment of the chronic toxicity and oncogenicity of Aroclor-1016,Aroclor-1242,Aroclor-1254,and Aroclor-1260 administered in diet to rats: Batelle Study No.SC920192 Brunner M.J;T.M.Sullivan;A.W.Singer
  4. Microbiol.Rev. v.55 Biodegradation of halogenated organic compounds Chaudhry G.R.;S.Chapalamadugu
  5. Appl.Environ.Microbiol. v.58 Conversion of cis-unsaturated fatty acids to trans,a possible mechanism for the protection of phenol-degrading Pseudomonas putida P8 from substrate toxicity Heipieper H.J;R.Diefenbach;H.Keweloh
  6. Appl.Environ.Microbiol. v.62 Genetic structure of the gene encoding 2,3-DHBP dioxygenase and HOPDA hydrolase from biphenyl- and 4CB-degrading Pseudomonas sp.strain DJ-12 Kim E.;Y.Kim;C.K.Kim
  7. Mechanism of organic solvent tolerance in bacteria Bacterial stress responses Kieboom J.;J.A.M.de Bont;G.Storz(ed.);R.Hengge-Aronis(ed.)
  8. J.Microbiol.Biotechnol. v.9 Responses of Pseudomonas sp.DJ-12 to pollutant stresses of benzoate and 4-chlorobenzoate Ko Y.J;S.H.Park;Y.K.Park;C.K.Kim
  9. J.Bacteriol. v.179 Proteins induced in Escherichia coli by benzoic acid Lambert L.A.;K.Abshire;D.Blankenhorn;J.L.Slonczewski
  10. J.Clin.Microbiol. v.36 Species-specific and ubiquitous-DNA-based assays for rapid identification of Staphylococcus aureus Martineau F.;F.J.Picard;P.H.Roy;M.Ouellette;M.G.Bergeron
  11. Toxicol.Lett. v.91 A highly toxic PCB produces unusual changes in the fatty acid composition of rat liver Matsusue K.;Y.Ishii;N.Ariyoshi;K.Oguri
  12. J.Bacteriol. v.164 Morphological forms and viability of Campylobacter species studied by electron microscopy Ng L.K;R.Sherburne;D.E.Taylor;M.E.Stiles
  13. Rev.Environ.Contam.Toxicol. v.140 National standards and guidelines for pesticides in water,sediments,and aquatic organisms: application to water-quality assessments Nowell L.H;E.A.Resck
  14. J.Microbiol. v.36 Cellular responses of Pseudomonas sp.DJ-12 to the stresses of several aromatic pollutants Park S.H;Y.J.Ko;C.K.Kim
  15. Curr.Microbiol. v.43 Adaptive and cross-protective responses of Pseudomonas sp.DJ-12 to several aromatics and other stress shocks Park S.H;K.H.Oh;C.K.Kim
  16. J.Bacteriol. v.177 Isolation and expansion of the catabolic potential of a Pseudomonas putida strain able to grow in the presence of high concentrations of aromatic hydrocarbons Ramos J.L.;E.Duque;M.J.Huertas;A.Haidour
  17. J.Bacteriol. v.108 Solubilization of the cytoplasmic membrane of Escherichia coli by triton X-100 Schnaitman C.A.
  18. Environ.Microbiol v.3 no.2 Chemical properties of catechols and their molecular modes of toxic action in cells,from microorganisms to mammals Schweigert N.;A.J.Zehnder;R.I.Eggen
  19. J.Bacteriol. v.269 Interaction of cyclic hydrocarbons with biological membranes Sikkema J.;J.A.M.de Bont;B.Poolman
  20. Microbiol.Rev. v.59 Mechanisms of membrane toxicity of hydrocarbons Sikkema J.;J.A.M.de Bont;B.Poolman
  21. J.Bacteriol. v.151 Reassembly in vitro of hexagonal surface arrays in a protein producing bacterium Bacillus brevis 47 Tsuboi A.;N.Tsukagosh;S.Udaka
  22. Appl.Environ.Microbiol. v.57 Effect of benzoic acid on glycolytic metabolism levels and intracellular pH in Saccharomyces cerevisiae Warth A.D.