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RESEARCH PRODUCT
Development of an in vitro system to study oral biofilms in real time through impedance technology: validation and potential applications
María D. FerrerMari Carmen LlenaBob T. RosierDanuta MazurelÁLvaro Villanueva-castelloteElena BuetasAlex Mirasubject
0301 basic medicineMicrobiology (medical)Fastidious organismSalivamultiple-species biofilmdental plaquemedicine.drug_classMicroorganismAntibioticslcsh:QR1-502real-timeDental plaquebiofilm dynamicslcsh:Microbiologylcsh:Infectious and parasitic diseasesMicrobiologyStreptococcus mutans03 medical and health sciences0302 clinical medicinetongueantibioticmedicinelcsh:RC109-216Dentistry (miscellaneous)PathogenbiologyOral biofilmsChemistryoral biofilmsBiofilm030206 dentistrybiochemical phenomena metabolism and nutritionmedicine.diseasebiology.organism_classificationStreptococcus mutansstreptococcus mutans030104 developmental biologyInfectious Diseasesin vitro modelimpedanceOriginal Articledescription
ABSTRACT Background and objectives: We have developed a standardized, easy-to-use in vitro model to study single- and multiple-species oral biofilms in real time through impedance technology, which elucidates the kinetics of biofilm formation in 96-well plates, without the requirement for any further manipulation. Design and Results: Using this system, biofilms of Streptococcus mutans appear to be sugar-dependent and highly resistant to amoxicilin, an antibiotic to which this oral pathogen is highly sensitive in a planktonic state. Saliva, tongue and dental plaque samples were also used as inocula to form multiple-species biofilms. DNA isolation and Illumina sequencing of the biofilms showed that the multi-species biofilms were formed by tens or hundreds of species, had a similar composition to the original inoculum, and included fastidious microorganisms which are important for oral health and disease. As an example of the potential applications of the model, we show that oral biofilms can be inhibited by amoxicilin, but in some cases they are induced by the antibiotic, suggesting the existence of responders and non-responders to a given antibiotic. Conclusions: We therefore propose the system as a valid in vitro model to study oral biofilm dynamics, including their susceptibility to antibiotics, antiseptics or anti-adhesive compounds.
year | journal | country | edition | language |
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2019-05-01 | Journal of Oral Microbiology |