Immigration and emigration of Burkholderia cepacia and Pseudomonas aeruginosa between and within mixed biofilm communities
Open Access
- 30 January 2004
- journal article
- Published by Oxford University Press (OUP) in Journal of Applied Microbiology
- Vol. 96 (3) , 455-463
- https://doi.org/10.1111/j.1365-2672.2004.02201.x
Abstract
Aims: To investigate the dynamics of binary culture biofilm formation through use of both the Sorbarod model of biofilm growth and the constant depth film fermenter (CDFF). Methods and Results: Pseudo steady-state biofilm cultures of laboratory and clinical strains of Pseudomonas aeruginosa, selected on the basis of their ability to produce a Burkholderia cepacia growth-inhibitory substance, were established on Sorbarod filters and challenged with corresponding planktonic grown cultures of B. cepacia. Reverse challenges were also conducted. Both B. cepacia and P. aeruginosa were able to form steady-state monoculture biofilms after 48 h growth. When steady-state biofilms of B. cepacia NTCT 10661 were challenged with planktonically grown P. aeruginosa PAO1 known to produce a B. cepacia growth-inhibitory substance, the immigrant population was rapidly and almost completely bound to the biofilm, displacing B. cepacia. By contrast, established biofilms of P. aeruginosa PAO1 resisted immigration of B. cepacia 10661. Similar experiments conducted with a nongrowth inhibitory substance producing clinical pairing of P. aeruginosa 313113 and B. cepacia 313113 led to the formation of stable, mixed biofilm populations in both instances. Moreover, co-inoculation with these clinical isolates resulted in a stable, mixed steady-state biofilm. Similar observations were made for biofilms generated in CDFFs. In such instances following pan-swapping between two monoculture CDFFs, B. cepacia 313113 was able to integrate into an established P. aeruginosa 313113 biofilm to form a stable binary biofilm. Conclusions: Establishment of a mixed species community follows a specific sequence of inoculation that may either be due to some degree of match between co-colonizers or that P. aeruginosa predisposes uncolonized sections of the surface to permit B. cepacia colonization. Significance and Impact of the Study: Colonization of a surface with one bacterial species confers colonization resistance towards other species. Disinfection of a surface might well increase the probability of pathogen harbourage.Keywords
This publication has 16 references indexed in Scilit:
- Biofilms as Complex Differentiated CommunitiesAnnual Review of Microbiology, 2002
- Biofilms: problems of controlPublished by Cambridge University Press (CUP) ,2000
- Coaggregation and coadhesion in oral biofilmsPublished by Cambridge University Press (CUP) ,2000
- The growth of Gardnerella vaginalis and Lactobacillus acidophilus in Sorbarod biofilmsJournal of Medical Microbiology, 1998
- A unifying hypothesis for the structure of microbial biofilms based on cellular automaton modelsFEMS Microbiology Ecology, 1997
- A simple in vitro model for growth control of bacterial biofilmsJournal of Applied Bacteriology, 1995
- Pathogenesis of cystic fibrosisPublished by Elsevier ,1993
- Surface hydrophobicity and dispersal of Pseudomonas aeruginosa from biofilmsFEMS Microbiology Letters, 1990
- A constant‐depth laboratory model film fermentorBiotechnology & Bioengineering, 1988
- The Influence of Environment on Envelope Properties Affecting Survival of Bacteria in InfectionsAnnual Review of Microbiology, 1985