Literature DB >> 23576069

Hydrodynamic effects on bacterial biofilm development in a microfluidic environment.

Junghyun Kim1, Han-Shin Kim, Sewoon Han, Ji-Yun Lee, Jae-Eung Oh, Seok Chung, Hee-Deung Park.   

Abstract

In aquatic environments, microorganisms tend to form biofilms on surfaces to protect them from harsh conditions. The biofilms then accumulate into multilayered mat-like structures. In this study, we evaluated the effects of the hydrodynamic conditions on the ecology of biofilms produced by Pseudomonas aeruginosa (PA14). In microfluidic channels, we found that the development of biofilms was regulated by hydrodynamic conditions, but the developed biofilms also changed flow velocity by narrowing flow width. The coupled growing conditions were simplified by a new concept of consequent variables, and the dimensionless biofilm development (Ab/h(2) & Ab/w(cs)(2)) was successfully expressed by the Reynolds number (Re) and the dimension of the channel (r). At low Re, higher flow rates encouraged growth of biofilms, while higher flow rates with high Re suppressed growth of biofilms. These results provide a simple model as a theoretical basis for understanding development of biofilms in microfluidic channels.

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Year:  2013        PMID: 23576069     DOI: 10.1039/c3lc40802g

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  15 in total

1.  Life under flow: A novel microfluidic device for the assessment of anti-biofilm technologies.

Authors:  Maria Salta; Lorenzo Capretto; Dario Carugo; Julian A Wharton; Keith R Stokes
Journal:  Biomicrofluidics       Date:  2013-12-23       Impact factor: 2.800

2.  A microfluidic method and custom model for continuous, non-intrusive biofilm viscosity measurements under different nutrient conditions.

Authors:  J Greener; M Parvinzadeh Gashti; A Eslami; M P Zarabadi; S M Taghavi
Journal:  Biomicrofluidics       Date:  2016-11-18       Impact factor: 2.800

3.  Biofilm responses to smooth flow fields and chemical gradients in novel microfluidic flow cells.

Authors:  Jisun L Song; Kelly H Au; Kimberly T Huynh; Aaron I Packman
Journal:  Biotechnol Bioeng       Date:  2013-09-30       Impact factor: 4.530

4.  Combined Effects Of Low Incubation Temperature, Minimal Growth Medium, And Low Hydrodynamics Optimize Acinetobacter baumannii Biofilm Formation.

Authors:  Emmanuel C Eze; Mohamed E El Zowalaty
Journal:  Infect Drug Resist       Date:  2019-11-15       Impact factor: 4.003

5.  Community dynamics of prokaryotic and eukaryotic microbes in an estuary reservoir.

Authors:  Zhen Sun; Guoping Li; Chengwei Wang; Yuhang Jing; Yiping Zhu; Shumin Zhang; Yan Liu
Journal:  Sci Rep       Date:  2014-11-10       Impact factor: 4.379

6.  Detecting Swelling States of Red Blood Cells by "Cell-Fluid Coupling Spectroscopy".

Authors:  Carla Zensen; Isis E Fernandez; Oliver Eickelberg; Jochen Feldmann; Theobald Lohmüller
Journal:  Adv Sci (Weinh)       Date:  2016-10-13       Impact factor: 16.806

7.  Bacterial biofilm under flow: First a physical struggle to stay, then a matter of breathing.

Authors:  Philippe Thomen; Jérôme Robert; Amaury Monmeyran; Anne-Florence Bitbol; Carine Douarche; Nelly Henry
Journal:  PLoS One       Date:  2017-04-12       Impact factor: 3.240

8.  Dynamic Flow Characteristics and Design Principles of Laminar Flow Microbial Fuel Cells.

Authors:  Way Lee Cheng; Celal Erbay; Reza Sadr; Arum Han
Journal:  Micromachines (Basel)       Date:  2018-09-20       Impact factor: 2.891

9.  MineLoC: A Rapid Production of Lab-on-a-Chip Biosensors Using 3D Printer and the Sandbox Game, Minecraft.

Authors:  Kyukwang Kim; Hyeongkeun Kim; Seunggyu Kim; Jessie S Jeon
Journal:  Sensors (Basel)       Date:  2018-06-10       Impact factor: 3.576

10.  Microfluidic System for Observation of Bacterial Culture and Effects on Biofilm Formation at Microscale.

Authors:  Xiao-Yan Zhang; Kai Sun; Aliya Abulimiti; Pian-Pian Xu; Zhe-Yu Li
Journal:  Micromachines (Basel)       Date:  2019-09-12       Impact factor: 2.891

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