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Updated: Jun 26, 2026

Use of a High-throughput In Vitro Microfluidic System to Develop Oral Multi-species Biofilms
Published on: December 1, 2014
In vitro evaluation of membranes for regenerative procedures against oral bacteria
Ana Clara Kuerten Gil1, Maick Meneguzzo Prado2, Laura Rhoden da Rocha3
1Department of Implant Dentistry, Federal University of Santa Catarina (UFSC), Florianópolis, Santa Catarina, Brazil.
Abstract:
The current literature on guided bone regeneration (GBR) and guided tissue regeneration (GTR) membrane contamination reports that the physicochemical characteristics of these biomaterials might influence affinity to bacteria, which appears to be a major drawback for the clinical outcome of the regenerative procedures. Thus, this study aimed to evaluate, in vitro, a multispecies biofilm adherence and passage of bacteria through different types of commercially available membranes for GTR/GBR. Four types of membranes were tested (n=12): LC) Lumina Coat®; JS) Jason®; BG) Biogide®; and LP) Lumina PTFE®. Aluminum foil (AL) simulated an impermeable barrier and was used as the control. The membranes were adapted to specific apparatus and challenged with a mixed bacterial culture composed of A. actinomycetemcomitans b, S. mutans, S. mitis, and A. israelii. After 2 h or 7 days, bacterial adhesion and passage of bacteria were evaluated through CFU counting, which was analyzed by two-way ANOVA e post hoc Tukey, at a 5% significance level. Representative areas of two membranes of each group were analyzed through scanning electron microscopy (SEM) to assess the morphology and organization of the biofilm over the membrane fibers. LC and LP presented similar values of adhered bacterial cells (p > 0.05), significantly inferior when compared to the other groups, in both time points (p < 0.05). All the tested groups were permeable to bacterial cells, with no significant difference between the trial period of 2 h and 7 days (p > 0.05). SEM analyses demonstrated that adhered bacteria number increased throughout the time points (2 h < 7 days). Commercially available biological membranes demonstrated intense bacterial adherence and passage of bacteria, which increased throughout the trial period.
Insights
Bacterial contamination of guided bone regeneration (GBR) and guided tissue regeneration (GTR) membranes is a concern. This study found that while some membranes show less bacterial adherence, all tested membranes allow bacterial passage, increasing over time.
Area of Science:
- Biomaterials Science
- Microbiology
- Periodontology
Background:
- Guided bone regeneration (GBR) and guided tissue regeneration (GTR) membranes are crucial for regenerative procedures.
- Membrane contamination by bacteria is a significant challenge impacting clinical outcomes.
- The physicochemical properties of membranes may influence bacterial affinity and biofilm formation.
Purpose of the Study:
- To evaluate in vitro the adherence and passage of multispecies biofilms through different commercially available GTR/GBR membranes.
- To compare bacterial adhesion and penetration across various membrane types over time.
- To assess the impact of membrane material on bacterial colonization and permeability.
Main Methods:
- Four types of GTR/GBR membranes (Lumina Coat®, Jason®, Biogide®, Lumina PTFE®) and aluminum foil control were tested.
- Membranes were challenged with a mixed bacterial culture (A. actinomycetemcomitans, S. mutans, S. mitis, A. israelii).
- Bacterial adhesion and passage were quantified using CFU counting at 2 hours and 7 days; SEM analyzed biofilm morphology.
Main Results:
- Lumina Coat® and Lumina PTFE® showed significantly lower bacterial cell adhesion compared to Jason® and Biogide® at both time points.
- All tested membranes were permeable to bacteria, with no significant difference in passage between 2 hours and 7 days.
- Scanning electron microscopy revealed increased bacterial adherence over time (2h < 7 days) on all membranes.
Conclusions:
- Commercially available GTR/GBR membranes exhibit significant bacterial adherence and permeability.
- Bacterial colonization and passage increase over time, posing a risk for regenerative procedures.
- Membrane material influences bacterial adherence, but all tested membranes allow bacterial penetration.

