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In situ continuous electrochemical quantification of bacterial adhesion to electrically polarized metallic surfaces under shear.

Publication ,  Journal Article
Jones, A-AD; Buie, CR
Published in: Biointerphases
March 2022

Biofouling creates significant human and economic losses through infections, corrosion, and drag losses on ships and in oil and food distribution pipelines. Organisms adhered to these surfaces contend with high shear rates and are actively transported to the surface. The metallic surfaces to which these organisms are adhered also conduct charge at various potentials, and the effects of surface charge on adhesion rates are little addressed in the literature. We demonstrate that mass-transport limiting current, chronoamperometry, and cyclic voltammetry can be combined to provide resulting adhesion rates similar to those in the literature. Furthermore, we demonstrate that rotating disk electrodes can be used to study adhesion of bacteria to electrically polarized metallic surfaces under shear. We study the adhesion of Escherichia coli, Bacillus subtilis, and 1μm silica microspheres over a range of shear stress from 0.15 to 37  dyncm-2 or shear rates of 14.7-3730  s-1. Unlike quartz-crystal microbalance, our methodology measures changes in the area instead of mass, simultaneously providing measurements of the protein binding. Our deposition rates agree with those found using optical systems. However, unlike optical systems, our methods apply to a wider range of materials than on-chip flow devices.

Duke Scholars

Published In

Biointerphases

DOI

EISSN

1559-4106

ISSN

1934-8630

Publication Date

March 2022

Volume

17

Issue

2

Start / End Page

021001

Related Subject Headings

  • Surface Properties
  • Quartz Crystal Microbalance Techniques
  • Humans
  • Escherichia coli
  • Electricity
  • Biofouling
  • Bacterial Adhesion
  • 51 Physical sciences
  • 34 Chemical sciences
  • 31 Biological sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Jones, A.-A., & Buie, C. R. (2022). In situ continuous electrochemical quantification of bacterial adhesion to electrically polarized metallic surfaces under shear. Biointerphases, 17(2), 021001. https://doi.org/10.1116/6.0001585
Jones, A-Andrew D., and Cullen R. Buie. “In situ continuous electrochemical quantification of bacterial adhesion to electrically polarized metallic surfaces under shear.Biointerphases 17, no. 2 (March 2022): 021001. https://doi.org/10.1116/6.0001585.
Jones, A. Andrew D., and Cullen R. Buie. “In situ continuous electrochemical quantification of bacterial adhesion to electrically polarized metallic surfaces under shear.Biointerphases, vol. 17, no. 2, Mar. 2022, p. 021001. Epmc, doi:10.1116/6.0001585.

Published In

Biointerphases

DOI

EISSN

1559-4106

ISSN

1934-8630

Publication Date

March 2022

Volume

17

Issue

2

Start / End Page

021001

Related Subject Headings

  • Surface Properties
  • Quartz Crystal Microbalance Techniques
  • Humans
  • Escherichia coli
  • Electricity
  • Biofouling
  • Bacterial Adhesion
  • 51 Physical sciences
  • 34 Chemical sciences
  • 31 Biological sciences