Rapid and Accurate Antimicrobial Susceptibility Testing Using Label‐Free Electrical Impedance‐Based Microfluidic Platform

Author:

Chen Jiahong12,Zhong Jianwei3,Chang Yifu4,Zhou Yinning4,Koo Seok Hwee5,Tan Thean Yen5,Lei Hongtao12,Ai Ye3ORCID

Affiliation:

1. Guangdong Provincial Key Laboratory of Food Quality and Safety/National‐Local Joint Engineering Research Center for Machining and Safety of Livestock and Poultry Products College of Food Science South China Agricultural University Guangzhou 510642 China

2. Guangdong Laboratory for Lingnan Modern Agriculture Guangzhou 510642 China

3. Pillar of Engineering Product Development Singapore University of Technology and Design 8 Somapah Road Singapore 487372 Singapore

4. Joint Key Laboratory of the Ministry of Education Institute of Applied Physics and Materials Engineering University of Macau Avenida da Universidade Taipa Macau 999078 China

5. Department of Laboratory Medicine Changi General Hospital Singapore 529889 Singapore

Abstract

AbstractAntimicrobial resistance has become a serious threat to the global public health. Accurate and rapid antimicrobial susceptibility testing (AST) allows evidence‐based prescribing of antibiotics to improve patient care and clinical outcomes. Current culture‐based AST assays are inherently limited by the doubling time of bacterial reproduction, which require at least 24 h to have a decisive result. Herein, a label‐free electrical impedance‐based microfluidic platform designed to expedite and streamline AST procedure for clinical practice is presented. Following a 30‐min exposure of bacterial samples to antibiotics, the presented high‐throughput, single‐bacterium level impedance characterization platform enables a rapid 2‐min AST assay. The platform facilitates accurate analysis of individual bacterial viability, as indicated by changes in electrical characteristics, thereby enabling the determination of antimicrobial resistance. Moreover, the potential clinical applicability of this platform is demonstrated by testing different E. coli strains against five antibiotics, yielding 100% categorical agreements compared to standard culture methods.

Funder

China Scholarship Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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