Literature DB >> 18955534

The electricidal effect: reduction of Staphylococcus and pseudomonas biofilms by prolonged exposure to low-intensity electrical current.

Jose L del Pozo1, Mark S Rouse, Jayawant N Mandrekar, James M Steckelberg, Robin Patel.   

Abstract

The activity of electrical current against planktonic bacteria has previously been demonstrated. The short-term exposure of the bacteria in biofilms to electrical current in the absence of antimicrobials has been shown to have no substantial effect; however, longer-term exposure has not been studied. A previously described in vitro model was used to determine the effect of prolonged exposure (i.e., up to 7 days) to low-intensity (i.e., 20-, 200-, and 2,000-microampere) electrical direct currents on Pseudomonas aeruginosa, Staphylococcus aureus, and Staphylococcus epidermidis biofilms. Dose- and time-dependent killing was observed. A maximum of a 6-log(10)-CFU/cm(2) reduction was observed when S. epidermidis biofilms were exposed to 2,000 microamperes for at least 2 days. A 4- to 5-log(10)-CFU/cm(2) reduction was observed when S. aureus biofilms were exposed to 2,000 microamperes for at least 2 days. Finally, a 3.5- to 5-log(10)-CFU/cm(2) reduction was observed when P. aeruginosa biofilms were exposed to electrical current for 7 days. A higher electrical current intensity correlated with greater decreases in viable bacteria at all time points studied. In conclusion, low-intensity electrical current substantially reduced the numbers of viable bacteria in staphylococcal or Pseudomonas biofilms, a phenomenon we have labeled the "electricidal effect."

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Year:  2008        PMID: 18955534      PMCID: PMC2612149          DOI: 10.1128/AAC.00680-08

Source DB:  PubMed          Journal:  Antimicrob Agents Chemother        ISSN: 0066-4804            Impact factor:   5.191


  38 in total

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Journal:  Appl Environ Microbiol       Date:  1993-10       Impact factor: 4.792

3.  Prevention of pin tract infection in external stainless steel fixator frames using electric current in a goat model.

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Journal:  Biomaterials       Date:  2007-01-04       Impact factor: 12.479

4.  Electropermeabilization of cells in tissues assessed by the qualitative and quantitative electroloading of bleomycin.

Authors:  J Belehradek; S Orlowski; L H Ramirez; G Pron; B Poddevin; L M Mir
Journal:  Biochim Biophys Acta       Date:  1994-02-23

5.  Bacterial biofilms and the bioelectric effect.

Authors:  N Wellman; S M Fortun; B R McLeod
Journal:  Antimicrob Agents Chemother       Date:  1996-09       Impact factor: 5.191

6.  Mechanisms of the bactericidal activity of low amperage electric current (DC).

Authors:  W K Liu; M R Brown; T S Elliott
Journal:  J Antimicrob Chemother       Date:  1997-06       Impact factor: 5.790

7.  Fracture healing in a case of nonunion of the tibia by electrical stimulation.

Authors:  K P Srivastava; A K Saxena
Journal:  Int Surg       Date:  1977-01

8.  Experimental low-level direct current therapy in liver metastases: influence of polarity and current dose.

Authors:  A Turler; H Schaefer; N Schaefer; M Wagner; D Maintz; J C Qiao; A H Hoelscher
Journal:  Bioelectromagnetics       Date:  2000-07       Impact factor: 2.010

9.  Bacterial and fungal killing by iontophoresis with long-lived electrodes.

Authors:  C P Davis; N Wagle; M D Anderson; M M Warren
Journal:  Antimicrob Agents Chemother       Date:  1991-10       Impact factor: 5.191

10.  Electrochemical sterilization of bacteria absorbed on granular activated carbon.

Authors:  T Matsunaga; S Nakasono; S Masuda
Journal:  FEMS Microbiol Lett       Date:  1992-06-15       Impact factor: 2.742

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  37 in total

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Journal:  Infect Dis Clin North Am       Date:  2012-03       Impact factor: 5.982

3.  Cathodic Electrical Stimulation Combined With Vancomycin Enhances Treatment of Methicillin-resistant Staphylococcus aureus Implant-associated Infections.

Authors:  Scott Nodzo; Menachem Tobias; Lisa Hansen; Nicole R Luke-Marshall; Ross Cole; Linda Wild; Anthony A Campagnari; Mark T Ehrensberger
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4.  Capacitive coupling reduces instrumentation-related infection in rabbit spines: a pilot study.

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Journal:  Clin Orthop Relat Res       Date:  2012-06       Impact factor: 4.176

5.  Electrochemical biofilm control: mechanism of action.

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6.  Antibiofilm Activity of Electrical Current in a Catheter Model.

Authors:  Paul Voegele; Jon Badiola; Suzannah M Schmidt-Malan; Melissa J Karau; Kerryl E Greenwood-Quaintance; Jayawant N Mandrekar; Robin Patel
Journal:  Antimicrob Agents Chemother       Date:  2015-12-28       Impact factor: 5.191

7.  Prevention of Staphylococcus epidermidis biofilm formation using electrical current.

Authors:  Jose L Del Pozo; Mark S Rouse; Gorane Euba; Kerryl E Greenwood-Quaintance; Jayawant N Mandrekar; James M Steckelberg; Robin Patel
Journal:  J Appl Biomater Funct Mater       Date:  2014-09-05       Impact factor: 2.604

Review 8.  Electrochemical biofilm control: a review.

Authors:  Sujala T Sultana; Jerome T Babauta; Haluk Beyenal
Journal:  Biofouling       Date:  2015       Impact factor: 3.209

Review 9.  Nanomaterials and synergistic low-intensity direct current (LIDC) stimulation technology for orthopedic implantable medical devices.

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