Literature DB >> 29709981

Plasmid-Mediated AmpC β-Lactamase and Underestimation of Extended-Spectrum β-Lactamase in Cefepime-Susceptible Elevated-Ceftazidime-MIC Enterobacteriaceae Isolates.

Fumitaka Nishimura1, Yoshitomo Morinaga1, Norihiko Akamatsu1, Junichi Matsuda1, Norihito Kaku1, Kazuaki Takeda1, Naoki Uno1, Kosuke Kosai1, Hiroo Hasegawa1, Katsunori Yanagihara1.   

Abstract

Phenotypic detection of extended-spectrum β-lactamase (ESBL) is important for public health and infection control; however, plasmid-mediated AmpC β-lactamases (pAmpCs) can interfere with the ESBL phenotyping. We focused on Enterobacteriaceae strains that were susceptible to cefepime but had a mildly elevated minimum inhibitory concentration (MIC) of ceftazidime and studied the effect of pAmpC on the ESBL phenotyping in this population. Genotyping of ESBL and pAmpC was performed on 528 clinical isolates of Escherichia coli, Klebsiella spp., and Proteus spp. with a ceftazidime MIC of ≥2 μg/mL and cefepime MIC≤8 μg/mL; these isolates were collected at Nagasaki University Hospital from January 2005 to March 2011. In this sample, 145 isolates (27.5%) tested positive for pAmpC (pAmpC group). The concordance rates of phenotypic and genotypic detection of ESBLs were 69.2% in the pAmpC group and 88.8% in the non-pAmpC group (P=0.04). pAmpC was more commonly detected in isolates with non-CTX-M genes (5/53, 9.4%) than in isolates with CTX-M genes (8/121, 6.6%). Our data suggest that the presence of pAmpC increases the false negative detection of ESBL. When ESBL phenotyping is used, the underestimation of the prevalence of ESBL producers should be taken into account.

Entities:  

Keywords:  Escherichia coli; Klebsiella spp.; drug-resistant strains

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Year:  2018        PMID: 29709981     DOI: 10.7883/yoken.JJID.2017.469

Source DB:  PubMed          Journal:  Jpn J Infect Dis        ISSN: 1344-6304            Impact factor:   1.362


  4 in total

1.  Virulence characterization of Klebsiella pneumoniae and its relation with ESBL and AmpC beta-lactamase associated resistance.

Authors:  Elghar Soltani; Alka Hasani; Mohammad Ahangarzadeh Rezaee; Tahereh Pirzadeh; Mahin Ahangar Oskouee; Akbar Hasani; Arezoo Noie Oskouie; Ehsan Binesh
Journal:  Iran J Microbiol       Date:  2020-04

2.  Detection of ESBL/AmpC-Producing and Fosfomycin-Resistant Escherichia coli From Different Sources in Poultry Production in Southern Brazil.

Authors:  Luís Eduardo de Souza Gazal; Leonardo Pinto Medeiros; Miriam Dibo; Erick Kenji Nishio; Vanessa Lumi Koga; Bruna Carolina Gonçalves; Tiela Trapp Grassotti; Taiara Carolaine Leal de Camargo; João Juliano Pinheiro; Eliana Carolina Vespero; Kelly Cristina Tagliari de Brito; Benito Guimarães de Brito; Gerson Nakazato; Renata Katsuko Takayama Kobayashi
Journal:  Front Microbiol       Date:  2021-01-11       Impact factor: 5.640

3.  Pharmacokinetics of Intravitreal Vancomycin and Ceftazidime in Silicone Oil-Filled Macaque Eyes.

Authors:  Taku Imamura; Masashi Kakinoki; Daiki Hira; Tomoya Kitagawa; Satoshi Ueshima; Mikio Kakumoto; Tomohiro Terada; Ikuo Kawamoto; Mitsuru Murase; Masahito Ohji
Journal:  Transl Vis Sci Technol       Date:  2021-03-01       Impact factor: 3.283

4.  Systematic Review of Plasmid AmpC Type Resistances in Escherichia coli and Klebsiella pneumoniae and Preliminary Proposal of a Simplified Screening Method for ampC.

Authors:  Enrique Rodríguez-Guerrero; Juan Carlos Callejas-Rodelas; José María Navarro-Marí; José Gutiérrez-Fernández
Journal:  Microorganisms       Date:  2022-03-14
  4 in total

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