Effect of azithromycin on a red complex polymicrobial biofilm

Azithromycin has recently gained popularity for the treatment of periodontal disease, despite sparse literature supporting efficiency in treating periodontal bacterial biofilms. The aim of this study was to evaluate the effect of azithromycin on biofilms comprised of Porphyromonas gingivalis, Trepon...

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Main Authors: Hwei Sze Ong, Orit Oettinger-Barak, Stuart G. Dashper, Ivan B. Darby, Kheng H. Tan, Eric C. Reynolds
Format: Article
Language:English
Published: Taylor & Francis Group 2017-01-01
Series:Journal of Oral Microbiology
Subjects:
Online Access:http://dx.doi.org/10.1080/20002297.2017.1339579
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spelling doaj-c3a783d5d5f648a3b99b4c49149767962020-11-24T23:27:17ZengTaylor & Francis GroupJournal of Oral Microbiology2000-22972017-01-019110.1080/20002297.2017.13395791339579Effect of azithromycin on a red complex polymicrobial biofilmHwei Sze Ong0Orit Oettinger-Barak1Stuart G. Dashper2Ivan B. Darby3Kheng H. Tan4Eric C. Reynolds5The University of MelbourneThe University of MelbourneThe University of MelbourneThe University of MelbourneThe University of MelbourneThe University of MelbourneAzithromycin has recently gained popularity for the treatment of periodontal disease, despite sparse literature supporting efficiency in treating periodontal bacterial biofilms. The aim of this study was to evaluate the effect of azithromycin on biofilms comprised of Porphyromonas gingivalis, Treponema denticola, and Tannerella forsythia in comparison to an amoxicillin and metronidazole combination. P. gingivalis W50, T. denticola ATCC35405, and T. forsythia ATCC43037 grown under anaerobic conditions at 37°C were aliquoted into 96-well flat-bottom plates in different combinations with addition of azithromycin or amoxicillin + metronidazole at various concentrations. For the biofilm assay, the plates were incubated at 37°C anaerobically for 48 h, after which the biofilms were stained with crystal violet and measured for absorbance at AU620. In this model, polymicrobial biofilms of P. gingivalis + T. denticola, P. gingivalis + T. forsythia, and T. denticola + T. forsythia were cultured. Combination of all three bacteria enhanced biofilm biomass. Azithromycin demonstrated a minimal biofilm inhibitory concentration (MBIC) of 10.6 mg/L, while the amoxicillin + metronidazole combination was more effective in inhibiting biofilm formation with a MBIC of 1.63 mg/L. Polymicrobial biofilm formation was demonstrated by combination of all three red complex bacteria. Azithromycin was ineffective in preventing biofilm formation within a clinically achievable concentration, whereas the combination of amoxicillin and metronidazole was more effective for this purpose.http://dx.doi.org/10.1080/20002297.2017.1339579Red complex bacteriaazithromycinbiofilmperiodontal diseaseantibiotic therapy
collection DOAJ
language English
format Article
sources DOAJ
author Hwei Sze Ong
Orit Oettinger-Barak
Stuart G. Dashper
Ivan B. Darby
Kheng H. Tan
Eric C. Reynolds
spellingShingle Hwei Sze Ong
Orit Oettinger-Barak
Stuart G. Dashper
Ivan B. Darby
Kheng H. Tan
Eric C. Reynolds
Effect of azithromycin on a red complex polymicrobial biofilm
Journal of Oral Microbiology
Red complex bacteria
azithromycin
biofilm
periodontal disease
antibiotic therapy
author_facet Hwei Sze Ong
Orit Oettinger-Barak
Stuart G. Dashper
Ivan B. Darby
Kheng H. Tan
Eric C. Reynolds
author_sort Hwei Sze Ong
title Effect of azithromycin on a red complex polymicrobial biofilm
title_short Effect of azithromycin on a red complex polymicrobial biofilm
title_full Effect of azithromycin on a red complex polymicrobial biofilm
title_fullStr Effect of azithromycin on a red complex polymicrobial biofilm
title_full_unstemmed Effect of azithromycin on a red complex polymicrobial biofilm
title_sort effect of azithromycin on a red complex polymicrobial biofilm
publisher Taylor & Francis Group
series Journal of Oral Microbiology
issn 2000-2297
publishDate 2017-01-01
description Azithromycin has recently gained popularity for the treatment of periodontal disease, despite sparse literature supporting efficiency in treating periodontal bacterial biofilms. The aim of this study was to evaluate the effect of azithromycin on biofilms comprised of Porphyromonas gingivalis, Treponema denticola, and Tannerella forsythia in comparison to an amoxicillin and metronidazole combination. P. gingivalis W50, T. denticola ATCC35405, and T. forsythia ATCC43037 grown under anaerobic conditions at 37°C were aliquoted into 96-well flat-bottom plates in different combinations with addition of azithromycin or amoxicillin + metronidazole at various concentrations. For the biofilm assay, the plates were incubated at 37°C anaerobically for 48 h, after which the biofilms were stained with crystal violet and measured for absorbance at AU620. In this model, polymicrobial biofilms of P. gingivalis + T. denticola, P. gingivalis + T. forsythia, and T. denticola + T. forsythia were cultured. Combination of all three bacteria enhanced biofilm biomass. Azithromycin demonstrated a minimal biofilm inhibitory concentration (MBIC) of 10.6 mg/L, while the amoxicillin + metronidazole combination was more effective in inhibiting biofilm formation with a MBIC of 1.63 mg/L. Polymicrobial biofilm formation was demonstrated by combination of all three red complex bacteria. Azithromycin was ineffective in preventing biofilm formation within a clinically achievable concentration, whereas the combination of amoxicillin and metronidazole was more effective for this purpose.
topic Red complex bacteria
azithromycin
biofilm
periodontal disease
antibiotic therapy
url http://dx.doi.org/10.1080/20002297.2017.1339579
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