Rapid Antimicrobial Susceptibility Testing of Bacillus anthracis, Yersinia pestis, and Burkholderia pseudomallei by Use of Laser Light Scattering Technology

被引:25
作者
Bugrysheva, Julia V. [1 ]
Lascols, Christine [1 ]
Sue, David [1 ]
Weigel, Linda M. [1 ]
机构
[1] Ctr Dis Control & Prevent, Natl Ctr Emerging & Zoonot Infect Dis, Atlanta, GA USA
关键词
RESISTANCE; CEFTAZIDIME; AVIRULENT; STRAINS;
D O I
10.1128/JCM.03251-15
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Rapid methods to determine antimicrobial susceptibility would assist in the timely distribution of effective treatment or postexposure prophylaxis in the aftermath of the release of bacterial biothreat agents such as Bacillus anthracis, Yersinia pestis, or Burkholderia pseudomallei. Conventional susceptibility tests require 16 to 48 h of incubation, depending on the bacterial species. We evaluated a method that is based on laser light scattering technology that measures cell density in real time. We determined that it has the ability to rapidly differentiate between growth (resistant) and no growth (susceptible) of several bacterial threat agents in the presence of clinically relevant antimicrobials. Results were available in <4 h for B. anthracis and <6 h for Y. pestis and B. pseudomallei. One exception was B. pseudomallei in the presence of ceftazidime, which required >10 h of incubation. Use of laser scattering technology decreased the time required to determine antimicrobial susceptibility by 50% to 75% for B. anthracis, Y. pestis, and B. pseudomallei compared to conventional methods.
引用
收藏
页码:1462 / 1471
页数:10
相关论文
共 32 条
[1]  
[Anonymous], 2015, Methods for Antimicrobial Dilution and Disk Susceptibility Testing of Infrequently Isolated or Fastidious Bacteria
[2]   Antimicrobial susceptibility testing in 90min by bacterial cell count monitoring [J].
Broeren, M. A. C. ;
Maas, Y. ;
Retera, E. ;
Arents, N. L. A. .
CLINICAL MICROBIOLOGY AND INFECTION, 2013, 19 (03) :286-291
[3]  
Caplan Dana Magdalena, 2009, Roum Arch Microbiol Immunol, V68, P106
[4]   Antimicrobial resistance to ceftazidime involving loss of penicillin-binding protein 3 in Burkholderia pseudomallei [J].
Chantratita, Narisara ;
Rholl, Drew A. ;
Sim, Bernice ;
Wuthiekanun, Vanaporn ;
Limmathurotsakul, Direk ;
Amornchai, Premjit ;
Thanwisai, Aunchalee ;
Chua, Hui Hoon ;
Ooi, Wen Fong ;
Holden, Matthew T. G. ;
Day, Nicholas P. ;
Tan, Patrick ;
Schweizer, Herbert P. ;
Peacock, Sharon J. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (41) :17165-17170
[5]   Transcriptome analysis of Yersinia pestis in human plasma:: an approach for discovering bacterial genes involved in septicaemic plague [J].
Chauvaux, Sylvie ;
Rosso, Marie-Laure ;
Frangeul, Lionel ;
Lacroix, Celine ;
Labarre, Laurent ;
Schiavo, Angele ;
Marceau, Michael ;
Dillies, Marie-Agnes ;
Foulon, Jeannine ;
Coppee, Jean-Yves ;
Medigue, Claudine ;
Sirnonet, Michel ;
Carniel, Elisabeth .
MICROBIOLOGY-SGM, 2007, 153 :3112-3123
[6]   β-lactamase gene expression in a penicillin-resistant Bacillus anthracis strain [J].
Chen, YH ;
Tenover, FC ;
Koehler, TM .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2004, 48 (12) :4873-4877
[7]  
Clinical and Laboratory Standards Institute, 2015, M07A10 CLIN LAB STAN
[8]   Genetic methods for assessing antimicrobial resistance [J].
Cockerill, FR .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 1999, 43 (02) :199-212
[9]   ANTIMICROBIAL SUSCEPTIBILITIES OF MYCOBACTERIA AS DETERMINED BY DIFFERENTIAL LIGHT-SCATTERING AND CORRELATION WITH RESULTS FROM MULTIPLE REFERENCE LABORATORIES [J].
CONVILLE, PS ;
WITEBSKY, FG ;
MACLOWRY, JD .
JOURNAL OF CLINICAL MICROBIOLOGY, 1994, 32 (06) :1554-1559
[10]  
Cox Christopher R, 2014, Bacteriophage, V4, pe29011