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Stress-induced Antibiotic Susceptibility Testing on a Chip
Published on: January 8, 2014
A Microfluidic Channel Method for Rapid Drug-Susceptibility Testing of Pseudomonas aeruginosa
Yoshimi Matsumoto1, Shouichi Sakakihara1, Andrey Grushnikov1
1Institute of Scientific and Industrial Research, Osaka University, Osaka, Japan.
Abstract:
The recent global increase in the prevalence of antibiotic-resistant bacteria and lack of development of new therapeutic agents emphasize the importance of selecting appropriate antimicrobials for the treatment of infections. However, to date, the development of completely accelerated drug susceptibility testing methods has not been achieved despite the availability of a rapid identification method. We proposed an innovative rapid method for drug susceptibility testing for Pseudomonas aeruginosa that provides results within 3 h. The drug susceptibility testing microfluidic (DSTM) device was prepared using soft lithography. It consisted of five sets of four microfluidic channels sharing one inlet slot, and the four channels are gathered in a small area, permitting simultaneous microscopic observation. Antimicrobials were pre-introduced into each channel and dried before use. Bacterial suspensions in cation-adjusted Mueller-Hinton broth were introduced from the inlet slot and incubated for 3 h. Susceptibilities were microscopically evaluated on the basis of differences in cell numbers and shapes between drug-treated and control cells, using dedicated software. The results of 101 clinically isolated strains of P. aeruginosa obtained using the DSTM method strongly correlated with results obtained using the ordinary microbroth dilution method. Ciprofloxacin, meropenem, ceftazidime, and piperacillin caused elongation in susceptible cells, while meropenem also induced spheroplast and bulge formation. Morphological observation could alternatively be used to determine the susceptibility of P. aeruginosa to these drugs, although amikacin had little effect on cell shape. The rapid determination of bacterial drug susceptibility using the DSTM method could also be applicable to other pathogenic species, and it could easily be introduced into clinical laboratories without the need for expensive instrumentation.
Insights
A new 3-hour drug susceptibility test for Pseudomonas aeruginosa uses a microfluidic device to rapidly assess antibiotic effectiveness. This method accurately identifies bacterial susceptibility, aiding in timely infection treatment.
Area of Science:
- Microbiology
- Medical Technology
- Drug Discovery
Background:
- Rising antibiotic resistance necessitates rapid diagnostic tools.
- Current drug susceptibility testing methods lack sufficient speed.
- Pseudomonas aeruginosa infections pose significant treatment challenges.
Purpose of the Study:
- To develop and validate a rapid drug susceptibility testing (DST) method for Pseudomonas aeruginosa.
- To achieve DST results within 3 hours for clinical application.
- To utilize microfluidic technology for accelerated antimicrobial susceptibility evaluation.
Main Methods:
- Fabrication of a drug susceptibility testing microfluidic (DSTM) device using soft lithography.
- Simultaneous introduction of bacterial suspensions and pre-introduced antimicrobials into microfluidic channels.
- Microscopic evaluation of bacterial morphology and cell count changes after 3-hour incubation.
- Correlation of DSTM results with the standard microbroth dilution method for 101 clinical isolates.
Main Results:
- The DSTM method provided accurate DST results for Pseudomonas aeruginosa within 3 hours.
- Strong correlation observed between DSTM and microbroth dilution methods.
- Specific morphological changes (elongation, spheroplast formation) indicated susceptibility to certain antibiotics (ciprofloxacin, meropenem, ceftazidime, piperacillin).
Conclusions:
- The DSTM device offers a rapid and reliable method for determining P. aeruginosa susceptibility to key antibiotics.
- Morphological analysis via microscopy serves as a viable indicator for drug susceptibility.
- This technology has potential for broad application in clinical microbiology labs for various pathogens.

