Emerging technologies for antibiotic susceptibility testing

被引:99
作者
Behera, Bhagaban [1 ]
Vishnu, Anil G. K. [1 ,2 ]
Chatterjee, Suman [1 ]
Sitaramgupta, V. S. N. V. [1 ]
Sreekumar, Niranjana [1 ]
Nagabhushan, Apoorva [1 ]
Rajendran, Nirmala [3 ]
Prathik, B. H. [4 ]
Pandya, Hardik J. [1 ]
机构
[1] Indian Inst Sci, Dept Elect Syst Engn, Biomed & Elect 10 6 10 9 Engn Syst Lab, Bangalore, Karnataka, India
[2] Indian Inst Sci, Ctr BioSyst Sci & Engn, Bangalore, Karnataka, India
[3] Indian Inst Sci, IISc Med Ctr, Bangalore, Karnataka, India
[4] Indira Gandhi Inst Child Hlth, Bangalore, Karnataka, India
关键词
Bacteria; Antibiotics; AST; Emerging technologies; Microfabrication; SURFACE-PLASMON RESONANCE; MINIMUM INHIBITORY CONCENTRATION; RAPID BACTERIAL-GROWTH; RESISTANT STAPHYLOCOCCUS-AUREUS; ATOMIC-FORCE MICROSCOPY; GRAM-NEGATIVE BACTERIA; SINGLE-CELL GROWTH; ANTIMICROBIAL SUSCEPTIBILITY; ESCHERICHIA-COLI; MICROFLUIDIC PLATFORM;
D O I
10.1016/j.bios.2019.111552
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Superbugs such as infectious bacteria pose a great threat to humanity due to an increase in bacterial mortality leading to clinical treatment failure, lengthy hospital stay, intravenous therapy and accretion of bacteraemia. These disease-causing bacteria gain resistance to drugs over time which further complicates the treatment. Monitoring of antibiotic resistance is therefore necessary so that bacterial infectious diseases can be diagnosed rapidly. Antimicrobial susceptibility testing (AST) provides valuable information on the efficacy of antibiotic agents and their dosages for treatment against bacterial infections. In clinical laboratories, most widely used AST methods are disk diffusion, gradient diffusion, broth dilution, or commercially available semi-automated systems. Though these methods are cost-effective and accurate, they are time-consuming, labour-intensive, and require skilled manpower. Recently much attention has been on developing rapid AST techniques to avoid misuse of antibiotics and provide effective treatment. In this review, we have discussed emerging engineering AST techniques with special emphasis on phenotypic AST. These techniques include fluorescence imaging along with computational image processing, surface plasmon resonance, Raman spectra, and laser tweezer as well as micro/nanotechnology-based device such as microfluidics, microdroplets, and microchamber. The mechanical and electrical behaviour of single bacterial cell and bacterial suspension for the study of AST is also discussed.
引用
收藏
页数:19
相关论文
共 170 条
[131]   Electrochemical microdevices for rapid and on-site determination of the minimum inhibitory concentration of antibiotics [J].
Onishi, K. ;
Enomoto, J. ;
Araki, T. ;
Takagi, R. ;
Suzuki, H. ;
Fukuda, J. .
ANALYST, 2018, 143 (02) :396-399
[132]   Single-cell bacteria growth monitoring by automated DEP-facilitated image analysis [J].
Peitz, Ingmar ;
van Leeuwen, Rien .
LAB ON A CHIP, 2010, 10 (21) :2944-2951
[133]  
Piliarik Marek, 2009, V503, P65, DOI 10.1007/978-1-60327-567-5_5
[134]   Rapid urinary tract infection diagnostics by surface-enhanced Raman spectroscopy (SERS): identification and antibiotic susceptibilities [J].
Premasiri, W. R. ;
Chen, Ying ;
Williamson, P. M. ;
Bandarage, D. C. ;
Pyles, C. ;
Ziegler, L. D. .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2017, 409 (11) :3043-3054
[135]   Rapid flow cytometric susceptibility testing of Candida albicans [J].
Ramani, R ;
Ramani, A ;
Wong, SJ .
JOURNAL OF CLINICAL MICROBIOLOGY, 1997, 35 (09) :2320-2324
[136]   Pump-free gradient-based micro-device enables quantitative and high-throughput bacterial growth inhibition analysis [J].
Ran, Min ;
Wang, Ying ;
Wang, Sida ;
Luo, Chunxiong .
BIOMEDICAL MICRODEVICES, 2015, 17 (04)
[137]  
Read Andrew F., 2014, Evolution Medicine and Public Health, P147, DOI 10.1093/emph/eou024
[138]   Tracking lineages of single cells in lines using a microfluidic device [J].
Rowat, Amy C. ;
Bird, James C. ;
Agresti, Jeremy J. ;
Rando, Oliver J. ;
Weitz, David A. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (43) :18149-18154
[139]   Integrated microfluidic platform for rapid antimicrobial susceptibility testing and bacterial growth analysis using bead-based biosensor via fluorescence imaging [J].
Sabhachandani, Pooja ;
Sarkar, Saheli ;
Zucchi, Paola C. ;
Whitfield, Betsy A. ;
Kirby, James E. ;
Hirsch, Elizabeth B. ;
Konry, Tania .
MICROCHIMICA ACTA, 2017, 184 (12) :4619-4628
[140]   Rapid Real-Time Antimicrobial Susceptibility Testing with Electrical Sensing on Plastic Microchips with Printed Electrodes [J].
Safavieh, Mohammadali ;
Pandya, Hardik J. ;
Venkataraman, Maanasa ;
Thirumalaraju, Prudhvi ;
Kanakasabapathy, Manoj Kumar ;
Singh, Anupriya ;
Prabhakar, Devbalaji ;
Chug, Manjyot Kaur ;
Shafiee, Hadi .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (14) :12832-12840