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Candida albicans Biofilm Development on Medically-relevant Foreign Bodies in a Mouse Subcutaneous Model Followed by Bioluminescence Imaging
Published on: January 27, 2015
Biofilm Interactions of Candida albicans and Mitis Group Streptococci in a Titanium-Mucosal Interface Model
João Gabriel Silva Souza1,2, Martinna Bertolini2, Angela Thompson2
1Department of Prosthodontics and Periodontology, Piracicaba Dental School, University of Campinas (UNICAMP), Piracicaba, São Paulo, Brazil.
Abstract:
Streptococci from the mitis group (represented mainly by Streptococcus mitis, Streptococcus oralis, Streptococcus sanguinis, and Streptococcus gordonii) form robust biofilms with Candida albicans in different experimental models. These microorganisms have been found in polymicrobial biofilms forming on titanium biomaterial surfaces in humans with peri-implant disease. The purpose of this work was to study mutualistic interactions in biofilms forming on titanium and their effect on the adjacent mucosa, using a relevant infection model. Single and mixed biofilms of C. albicans and each Streptococcus species were grown on titanium disks. Bacterial and fungal biovolume and biomass were quantified in these biofilms. Organotypic mucosal constructs were exposed to preformed titanium surface biofilms to test their effect on secretion of proinflammatory cytokines and cell damage. C. albicans promoted bacterial biofilms of all mitis Streptococcus species on titanium surfaces. This relationship was mutualistic since all bacterial species upregulated the efg1 hypha-associated gene in C. albicans Mixed biofilms caused increased tissue damage but did not increase proinflammatory cytokine responses compared to biofilms comprising Candida alone. Interestingly, spent culture medium from tissues exposed to titanium biofilms suppressed Candida growth on titanium surfaces.IMPORTANCE Our findings provide new insights into the cross-kingdom interaction between C. albicans and Streptococcus species representative of the mitis group. These microorganisms colonize titanium-based dental implant materials, but little is known about their ability to cause inflammation and damage of the adjacent mucosal tissues. Using an in vitro biomaterial-mucosal interface infection model, we showed that mixed biofilms of each species with C. albicans enhance tissue damage. One possible mechanism for this effect is the increased fungal hypha-associated virulence gene expression we observed in mixed biofilms with these species. Interestingly, we also found that the interaction of multispecies biofilms with organotypic mucosal surfaces led to the release of growth-suppressing mediators of Candida, which may represent a homeostatic defense mechanism of the oral mucosa against fungal overgrowth. Thus, our findings provide novel insights into biofilms on biomaterials that may play an important role in the pathogenesis of mucosal infections around titanium implants.
Insights
Mixed biofilms of Candida albicans and mitis group Streptococci on titanium implants enhance tissue damage. This interaction promotes bacterial growth and increases fungal virulence gene expression, but also triggers mucosal defense mechanisms against Candida overgrowth.
Area of Science:
- Microbiology
- Biomaterials Science
- Oral Health
Background:
- Mitis group Streptococci and Candida albicans form robust biofilms on experimental models and human titanium biomaterials.
- These polymicrobial biofilms are implicated in peri-implant diseases affecting titanium dental implants.
- Understanding cross-kingdom interactions on biomaterials is crucial for managing implant-associated infections.
Purpose of the Study:
- To investigate mutualistic interactions between Candida albicans and mitis group Streptococci on titanium surfaces.
- To assess the impact of these mixed biofilms on adjacent organotypic mucosal tissues.
- To explore potential host defense mechanisms against biofilm formation on biomaterials.
Main Methods:
- Cultured single and mixed biofilms of C. albicans and mitis Streptococci on titanium disks.
- Quantified bacterial and fungal biovolume and biomass within biofilms.
- Exposed organotypic mucosal constructs to preformed titanium biofilms to evaluate cytokine secretion and cell damage.
Main Results:
- C. albicans promoted biofilm formation for all tested mitis Streptococci species on titanium.
- A mutualistic relationship was observed, with bacteria upregulating the C. albicans efg1 hypha-associated gene.
- Mixed biofilms increased tissue damage but not pro-inflammatory cytokine response compared to C. albicans alone; spent medium from exposed tissues suppressed Candida growth.
Conclusions:
- Mixed biofilms of C. albicans and mitis Streptococci on titanium enhance tissue damage, potentially via increased fungal virulence gene expression.
- The oral mucosa may possess a homeostatic defense mechanism releasing Candida growth-suppressing mediators in response to multispecies biofilms.
- Findings offer novel insights into biofilm pathogenesis on biomaterials, relevant to mucosal infections around titanium implants.

