Literature DB >> 26942773

Rapid identification of antibiotic resistance using droplet microfluidics.

Marie C Keays1, Mark O'Brien1, Anam Hussain1, Patrick A Kiely1,2, Tara Dalton1.   

Abstract

Culturing bacteria and monitoring bacterial cell growth is a critical issue when dealing with patients who present with bacterial infections. One of the main challenges that arises is the time taken to identify the particular strain of bacteria and consequently, decide the correct treatment. In the majority of cases, broad spectrum antibiotics are used to target infections when a narrow spectrum drug would be more appropriate. The efficient monitoring of bacterial growth and potential antibiotic resistance is necessary to identify the best treatment options for patients. Minturising the reactions into microfluidic droplets offers a novel method to rapidy analyze bacteria. Microfluidics facilitates low volume reactions that provide a unique system where each droplet reaction acts as an individual bioreactor. Here, we designed and built a novel platform that allowed us to create and monitor E.coli microfluidic droplet cultures. Optical capacity was built in and measurements of bacterial cultures were captured facilitating the continuous monitoring of individual reactions. The capacity of the instrument was demonstrated by the application of treatments to both bacteria and drug resistant strains of bacteria. We were able to detect responses within one hour in the droplet cultures, demonstrating the capacity of this workflow to the culture and rapid characterization of bacterial strains.

Entities:  

Keywords:  E.coli; Rapid Detection; antibiotic resistance; droplet microfluidics; microfluidics

Mesh:

Substances:

Year:  2016        PMID: 26942773      PMCID: PMC4879983          DOI: 10.1080/21655979.2016.1156824

Source DB:  PubMed          Journal:  Bioengineered        ISSN: 2165-5979            Impact factor:   3.269


  14 in total

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Review 5.  Antimicrobial susceptibility testing: a review of general principles and contemporary practices.

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Journal:  Clin Infect Dis       Date:  2009-12-01       Impact factor: 9.079

6.  High-throughput microfluidic system for long-term bacterial colony monitoring and antibiotic testing in zero-flow environments.

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Review 7.  Antibiotic resistance in the intensive care unit.

Authors:  M H Kollef; V J Fraser
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8.  Rapid detection and typing of live bacteria from human joint fluid samples by utilizing an integrated microfluidic system.

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9.  The economic impact of Staphylococcus aureus infection in New York City hospitals.

Authors:  R J Rubin; C A Harrington; A Poon; K Dietrich; J A Greene; A Moiduddin
Journal:  Emerg Infect Dis       Date:  1999 Jan-Feb       Impact factor: 6.883

10.  A quantitative analysis of shear effects on cell suspension and cell culture of perilla frutescens in bioreactors.

Authors:  J J Zhong; K Fujiyama; T Seki; T Yoshida
Journal:  Biotechnol Bioeng       Date:  1994-08-20       Impact factor: 4.530

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Review 2.  Antibiotics: An overview on the environmental occurrence, toxicity, degradation, and removal methods.

Authors:  Qiulian Yang; Yuan Gao; Jian Ke; Pau Loke Show; Yuhui Ge; Yanhua Liu; Ruixin Guo; Jianqiu Chen
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Review 3.  Application of Microfluidics in Experimental Ecology: The Importance of Being Spatial.

Authors:  Krisztina Nagy; Ágnes Ábrahám; Juan E Keymer; Péter Galajda
Journal:  Front Microbiol       Date:  2018-03-20       Impact factor: 5.640

4.  Microfluidic droplet application for bacterial surveillance in fresh-cut produce wash waters.

Authors:  J Brian Harmon; Hannah K Gray; Charles C Young; Kellogg J Schwab
Journal:  PLoS One       Date:  2020-06-09       Impact factor: 3.240

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