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Stress-induced Antibiotic Susceptibility Testing on a Chip
Authors:Maxim Kalashnikov  Jennifer Campbell  Jean C Lee  Andre Sharon  Alexis F Sauer-Budge
Institution:1.Fraunhofer USA Center for Manufacturing Innovation;2.Division of Infectious Diseases, Department of Medicine, Brigham and Women''s Hospital, Harvard Medical School;3.Department of Mechanical Engineering, Boston University;4.Department of Biomedical Engineering, Boston University
Abstract:We have developed a rapid microfluidic method for antibiotic susceptibility testing in a stress-based environment. Fluid is passed at high speeds over bacteria immobilized on the bottom of a microfluidic channel. In the presence of stress and antibiotic, susceptible strains of bacteria die rapidly. However, resistant bacteria survive these stressful conditions. The hypothesis behind this method is new: stress activation of biochemical pathways, which are targets of antibiotics, can accelerate antibiotic susceptibility testing. As compared to standard antibiotic susceptibility testing methods, the rate-limiting step - bacterial growth - is omitted during antibiotic application. The technical implementation of the method is in a combination of standard techniques and innovative approaches. The standard parts of the method include bacterial culture protocols, defining microfluidic channels in polydimethylsiloxane (PDMS), cell viability monitoring with fluorescence, and batch image processing for bacteria counting. Innovative parts of the method are in the use of culture media flow for mechanical stress application, use of enzymes to damage but not kill the bacteria, and use of microarray substrates for bacterial attachment. The developed platform can be used in antibiotic and nonantibiotic related drug development and testing. As compared to the standard bacterial suspension experiments, the effect of the drug can be turned on and off repeatedly over controlled time periods. Repetitive observation of the same bacterial population is possible over the course of the same experiment.
Keywords:Bioengineering  Issue 83  antibiotic  susceptibility  resistance  microfluidics  microscopy  rapid  testing  stress  bacteria  fluorescence
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