Method Article

Establishing the Minimal Bactericidal Concentration of an Antimicrobial Agent for Planktonic Cells (MBC-P) and Biofilm Cells (MBC-B)

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DOI:

10.3791/50854

January 2nd, 2014

In This Article

Summary

This protocol allows for a direct comparison between planktonic and biofilm resistance for a bacterial strain that can form a biofilm in vitro using a 96-well microtiter plate. Planktonic or biofilm bacteria are exposed to serial dilutions of the antimicrobial agent of choice. Viability is assayed by growth on agar plates.

Abstract

This protocol allows for a direct comparison between planktonic and biofilm resistance for a bacterial strain that can form a biofilm in vitro. Bacteria are inoculated into the wells of a 96-well microtiter plate. In the case of the planktonic assay, serial dilutions of the antimicrobial agent of choice are added to the bacterial suspensions. In the biofilm assay, once inoculated, the bacteria are left to form a biofilm over a set period of time. Unattached cells are removed from the wells, the media is replenished and serial dilutions of the antimicrobial agent of choice are added. After exposure to the antimicrobial agent, the planktonic cells are assayed for growth. For the biofilm assay, the media is refreshed with fresh media lacking the antimicrobial agent and the biofilm cells are left to recover. Biofilm cell viability is assayed after the recovery period. The MBC-P for the antimicrobial agent is defined as the lowest concentration of drug that kills the cells in the planktonic culture.  In contrast, the MBC-B for a strain is determined by exposing preformed biofilms to increasing concentrations of antimicrobial agent for 24 hr. The MBC-B is defined as the lowest concentration of antimicrobial agent that kills the cells in the biofilm.

Introduction

Antibiotic resistance assays were initially developed to assay resistance of planktonic (free-swimming) cultures of bacteria. Since many bacterial infections involve biofilms (surface-attached cells), we were interested in developing a method to assay biofilm-specific antibiotic resistance. However, most antibiotic resistance assays are poorly suited for measuring the resistance of biofilms. For example, determining the minimal inhibitory concentration (MIC) is the gold standard for determining antibiotic resistance of planktonic bacterial cultures 1. This assay entails mixing a diluted planktonic culture with a dilution series of antibiotic.  The conc....

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Protocol

1. MBC-B

  1. Growing a biofilm (adapted from O'Toole9).
    1. Grow a culture of the wild-type strain of interest and mutant strain for 16 hr in a rich medium at 37 °C.
    2. Dilute the saturated overnight cultures 1:100 into fresh medium for antibiotic resistance assays. A standard medium for P. aeruginosa is M63 minimal medium supplemented with magnesium sulfate and arginine (see Table 1). This medium stimulates the formation of a more robust biofilm.
    3. Add 100 μl of the dilution per well in a 96-well microtiter dish (see Table 1). Since t....

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Results

MBC-P and MBC-B assays were carried out, comparing the sensitivity of PA14 wild type with PA14 ∆ndvB. Tobramycin was used as the antibiotic. Results corresponding to step 1.4.4 (Figure 1) and step 2.3.4 (Figure 2) are presented. PA14 and ∆ndvB were inoculated into the MBC-P and MBC-B assays in triplicate. After completing steps 1.0-1.4 of the MBC-B protocol and steps 2.0-2.3 of the MBC-P protocol, the viable cells were plated onto an LB agar plate. Concentrations of tob.......

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Discussion

Antibiotic resistance in planktonic cells is defined as an increase in the minimum inhibitory concentration (MIC) of an antibiotic due to a permanent change in the cells (e.g. a mutation). The mechanisms of biofilm-specific resistance or tolerance that have been identified to date are the result of the expression of wild type genes within biofilms. Thus, the classical definition of resistance does not apply to biofilms. However, another set of definitions has been presented: resistance mechanisms prevent the ant.......

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Disclosures

The author declares that she has no competing financial interests.

Acknowledgements

The author would like to thank Li Zhang, Xian-Zhi Li, Aaron Hinz, and Clayton Hall for editorial help with this manuscript. This assay was initially developed in the lab of George O’Toole, Geisel School of Medicine at Dartmouth. Research in Dr. Mah’s lab is supported by grants from the Natural Sciences and Engineering Research Council of Canada and Cystic Fibrosis Canada.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments

1x M63

Prepare as a 5x M63 stock by dissolving 15g KH2PO4, 35g K2HPO4 and 10g (NH4)2SO4 in 1 L of water. This stock does not need to be autoclaved and can be stored at room temperature.  Dilute 5x stock 1:5, autoclave, cool, then add the desired components.

KH2PO4

Fisher

P285-500

K2HPO4

Fisher

P288-500

(NH4)2SO4

Sigma

A5132

Magnesium sulfate

Fisher

M63-500

Add to 1 mM final concentration.  Prepare as a 1 M stock in water and autoclave.

Tobramycin

Sigma

Prepare 50 mg/m stock. Aliquot and store at -20°C.

Arginine

Sigma

A5131

Add to 0.4% final concentration.  Prepare as a 20% stock in water and filter sterilize.  This alternative carbon/energy source can replace glucose and casamino acids

96-well microtiter plates

Corning

3595

Sterile, flat-bottom, low evaporation

Tranferpette (multichannel pipette)

BrandTech

2703610

8-channel, 20-200 μl

Multiprong device

Dan-Kar

MC48

48 prongs fit into ½ of a 96-well microtiter plate

References

  1. Methods for dilution antimicrobial susceptibility tests for bacteria that grow aerobically. Approved standard-eighth edition. , Ninth Edition, Clinical and Laboratory Standards Institute. Wayne, PA. (2009).
  2. Hoiby, N., Bjarnsholt, T., Givskov, M., Molin, S., Ciofu, O. Antibiotic resistance of bacterial biofilms. Int. J. Antimicrob. Agents. 35 (4), 322-332 (2010).
  3. Mah, T. F., O'Toole, G. A.

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Tags

Serial Dilution96 Well Microtiter PlateLB Agar PlatesMulti Pronged DeviceTobramycin AssayBacterial Viability

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