Time-lapse confocal microscopy to study in vitro Streptococcus mutans surface colonization

Author:

Wing Jason T F1,Hayashi Michael A L1ORCID,Redissi Aneesa F1,Vickerman M Margaret2,Tenuta Livia M A3,Fenno J Christopher4,Rickard Alexander H1

Affiliation:

1. Department of Epidemiology, University of Michigan School of Public Health , Ann Arbor, MI 48109 , United States

2. Department of Oral Biology, School of Dental Medicine, University at Buffalo , Buffalo, NY 14214 , United States

3. Department of Cariology, Restorative Sciences and Endodontics, School of Dentistry, University of Michigan , Ann Arbor, MI 48109 , United States

4. Department of Biologic and Materials Sciences & Prosthodontics, School of Dentistry, University of Michigan , Ann Arbor, MI 48109 , United States

Abstract

Abstract The cariogenicity of Streptococcus mutans relates to its ability to form biofilms on dental surfaces. The aim of this work was to develop a flowcell system compatible with time-lapse confocal microscopy to compare the adhesion and accumulation of S. mutans cells on surfaces in unsupplemented media against media containing sucrose or sucralose (a non-metabolized sweetener) over a short period of time. Fluorescent S. mutans 3209/pVMCherry was suspended in unsupplemented media or media supplemented with 1% sucrose or 1% sucralose and passed through a 3D-printed flowcell system. Flowcells were imaged over 60 minutes using a confocal microscope. Image analysis was performed, including a newly developed object-movement-based method to measure biomass adhesion. Streptococcus mutans 3209/pVMCherry grown in 1% sucrose-supplemented media formed small, dense, relatively immobile clumps in the flowcell system measured by biovolume, surface area, and median object centroid movement. Sucralose-supplemented and un-supplemented media yielded large, loose, mobile aggregates. Architectural metrics and per-object movement were significantly different (P < 0.05) when comparing sucrose-supplemented media to either unsupplemented or sucralose-supplemented media. These results demonstrate the utility of a flowcell system compatible with time-lapse confocal microscopy and image analysis when studying initial biofilm formation and adhesion under different nutritional conditions.

Publisher

Oxford University Press (OUP)

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