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Protocol for Biofilm Streamer Formation in a Microfluidic Device with Micro-pillars
Published on: August 20, 2014
Stenosis triggers spread of helical Pseudomonas biofilms in cylindrical flow systems
David R Espeso1,2, Ana Carpio2, Esteban Martínez-García1
1Centro Nacional de Biotecnología, CSIC, Madrid, 28049, Spain.
Abstract:
Biofilms are multicellular bacterial structures that adhere to surfaces and often endow the bacterial population with tolerance to antibiotics and other environmental insults. Biofilms frequently colonize the tubing of medical devices through mechanisms that are poorly understood. Here we studied the helicoidal spread of Pseudomonas putida biofilms through cylindrical conduits of varied diameters in slow laminar flow regimes. Numerical simulations of such flows reveal vortical motion at stenoses and junctions, which enhances bacterial adhesion and fosters formation of filamentous structures. Formation of long, downstream-flowing bacterial threads that stem from narrowings and connections was detected experimentally, as predicted by our model. Accumulation of bacterial biomass makes the resulting filaments undergo a helical instability. These incipient helices then coarsened until constrained by the tubing walls, and spread along the whole tube length without obstructing the flow. A three-dimensional discrete filament model supports this coarsening mechanism and yields simulations of helix dynamics in accordance with our experimental observations. These findings describe an unanticipated mechanism for bacterial spreading in tubing networks which might be involved in some hospital-acquired infections and bacterial contamination of catheters.
Insights
Bacterial biofilms spread helically through medical tubing via flow-induced instabilities, a new mechanism potentially explaining device contamination and hospital infections.
Area of Science:
- Microbiology
- Fluid Dynamics
- Biophysics
Background:
- Biofilms are bacterial communities that adhere to surfaces, conferring antibiotic tolerance.
- The spread of bacterial biofilms in medical device tubing is poorly understood.
- Understanding biofilm dynamics is crucial for preventing hospital-acquired infections.
Purpose of the Study:
- To investigate the mechanism of Pseudomonas putida biofilm spread in cylindrical conduits.
- To model and experimentally validate the helicoidal spread of biofilms.
Main Methods:
- Studied biofilm spread in varied diameter tubes under slow laminar flow.
- Utilized numerical simulations to analyze flow dynamics and bacterial adhesion.
- Employed a three-dimensional discrete filament model for helix dynamics.
Main Results:
- Vortical motion at constrictions and junctions enhances bacterial adhesion and filament formation.
- Experimentally observed long, downstream-flowing bacterial threads, matching model predictions.
- Biofilm filaments developed helical instability and spread along tubing without obstructing flow.
Conclusions:
- Discovered a novel mechanism of helicoidal biofilm spread in tubing.
- This spreading mechanism may contribute to medical device contamination and infections.
- Findings provide insights into bacterial colonization in confined flow environments.

