Abstract
Polystyrene petri dishes containing liquid medium were inoculated with single-cell suspensions of a fresh clinical isolate of Neisseria subflava and were incubated under conditions of low vibration. N. subflava colonies grew firmly attached to the surface of the dish, while the broth remained clear. Growing colonies released cells into the medium, resulting in the appearance of 10(2) to 10(4) small satellite colonies attached to the surface of the dish in an area adjacent to each mature colony after 24 h. Satellite colonies grew in patterns of streamers shaped like jets and flares emanating from mature colonies and pointing toward the center of the dish. This dispersal pattern evidently resulted from the surface translocation of detached biofilm cells by buoyancy-driven convection currents that were generated due to slight temperature gradients in the medium. Streamers of satellite colonies ranged from 2 to >40 mm in length. Satellite colonies in very long streamers were relatively uniform in size regardless of their distance from the mature colony, suggesting that mature colonies released single cells or small clusters of cells into the medium and that the detachment, surface translocation, and subsequent surface reattachment of released cells were a transitory process. Incubation of N. subflava single cells in a perfused biofilm fermentor resulted in a large spike of the number of CFU in the perfusate after 9.5 h of growth, consistent with a rapid release of cells into the medium. Biofilm colonies of several other phylogenetically diverse oral bacteria, including Actinobacillus actinomycetemcomitans, Haemophilus aphrophilus, Streptococcus mitis, and a prevalent but previously uncultured oral Streptococcus sp., exhibited similar temperature-dependent dispersal patterns in broth culture. This in vitro spreading phenotype could be a useful tool for studying biofilm dispersal in these and other nonflagellated bacteria and may have physiological relevance to biofilm dispersal in the oral cavity.
MeSH Terms
Agar
Bacteria, Anaerobic/genetics
Bacterial Adhesion/physiology
Biofilms/growth & development
Cell Movement
Genetic Variation
Humans
Mouth/microbiology
Neisseria/growth & development,physiology
Phylogeny
Surface Properties
Temperature
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Kaplan Jeffrey B
Department of Oral Biology, New Jersey Dental School, Newark, New Jersey 07103, USA. kaplanjb@umdnj.edu
Fine Daniel H
References (23)
23 references, click to expand
-
Actinobacillus actinomycetemcomitans and Hemophilus aphrophilus.
J Infect Dis. 1962 Sep-Oct;111:85-94
PMID: 14032829
-
Biofilm formation and dispersal under the influence of the global regulator CsrA of Escherichia coli.
J Bacteriol. 2002 Jan;184(1):290-301
PMID: 11741870
-
Growth rate control of adherent bacterial populations.
Appl Environ Microbiol. 1989 May;55(5):1308-11
PMID: 2667465
-
Possible involvement of the division cycle in dispersal of Escherichia coli from biofilms.
J Bacteriol. 1990 Mar;172(3):1667-9
PMID: 2407730
-
Biofilms: survival mechanisms of clinically relevant microorganisms.
Clin Microbiol Rev. 2002 Apr;15(2):167-93
PMID: 11932229
-
A statistical analysis of the effect of substrate utilization and shear stress on the kinetics of biofilm detachment.
Biotechnol Bioeng. 1993 Mar 25;41(7):728-35
PMID: 18609615
-
Two-dimensional model of biofilm detachment caused by internal stress from liquid flow.
Biotechnol Bioeng. 2001 Jan 20;72(2):205-18
PMID: 11114658
-
Actinobacillus actinomycetemcomitans in human periodontal disease.
J Clin Periodontol. 1985 Jan;12(1):1-20
PMID: 3882766
-
Population dynamics of Streptococcus mitis in its natural habitat.
Infect Immun. 2001 Oct;69(10):6055-63
PMID: 11553543
-
Extracellular products as mediators of the formation and detachment of Pseudomonas fluorescens biofilms.
FEMS Microbiol Lett. 1998 Oct 15;167(2):179-84
PMID: 9867469
-
Role of alginate lyase in cell detachment of Pseudomonas aeruginosa.
Appl Environ Microbiol. 1994 Jul;60(7):2355-9
PMID: 8074516
-
A quorum-sensing system in the free-living photosynthetic bacterium Rhodobacter sphaeroides.
J Bacteriol. 1997 Dec;179(23):7530-7
PMID: 9393720
-
Detachment of Streptococcus mutans biofilm cells by an endogenous enzymatic activity.
Infect Immun. 1996 Mar;64(3):1035-8
PMID: 8641755
-
Formation and dispersal of bacterial biofilms in vivo and in situ.
J Appl Bacteriol. 1993;74 Suppl:67S-78S
PMID: 8349535
-
Perfused biofilm fermenters.
Methods Enzymol. 1999;310:232-48
PMID: 10547797
-
Population structure and genetic diversity of Actinobacillus actinomycetemcomitans strains isolated from localized juvenile periodontitis patients.
J Clin Microbiol. 2002 Apr;40(4):1181-7
PMID: 11923328
-
A model of biofilm detachment.
Biotechnol Bioeng. 1993 Jan 5;41(1):111-7
PMID: 18601252
-
Genetic analysis of Escherichia coli biofilm formation: roles of flagella, motility, chemotaxis and type I pili.
Mol Microbiol. 1998 Oct;30(2):285-93
PMID: 9791174
-
Microbial biofilms.
Annu Rev Microbiol. 1995;49:711-45
PMID: 8561477
-
Survival and growth of Legionella species in the environment.
Soc Appl Bacteriol Symp Ser. 1991;20:121S-129S
PMID: 1887265
-
Growth and detachment of cell clusters from mature mixed-species biofilms.
Appl Environ Microbiol. 2001 Dec;67(12):5608-13
PMID: 11722913
-
Neisseria subflava endocarditis. Case report and review of the literature.
Am J Med. 1984 Apr;76(4):752-8
PMID: 6369982
-
Bacterial diversity in human subgingival plaque.
J Bacteriol. 2001 Jun;183(12):3770-83
PMID: 11371542