Literature DB >> 27773759

Extended-spectrum β-lactamase- and pAmpC-producing Enterobacteriaceae among the general population in a livestock-dense area.

C C H Wielders1, A H A M van Hoek2, P D Hengeveld2, C Veenman2, C M Dierikx2, T P Zomer2, L A M Smit3, W van der Hoek2, D J Heederik3, S C de Greeff2, C B M Maassen2, E van Duijkeren2.   

Abstract

OBJECTIVES: In the Netherlands there is an ongoing debate regarding environmental health risks of livestock farming for neighbouring residents. This explorative study aims to determine the prevalence of carriage of extended-spectrum β-lactamase and/or plasmid-mediated AmpC-producing Enterobacteriaceae (ESBL/pAmpC-E) in the general population living in a livestock-dense area, and to study associations between determinants, including exposure through contact with animals and the environment, and human carriage of ESBL/pAmpC-E.
METHODS: A cross-sectional study was performed among 2432 adults (aged 20-72 years) in 12 temporary research centres in the south of the Netherlands, consisting of a questionnaire and analysis of a faecal sample to assess carriage of ESBL/pAmpC-E. Risk factors were analysed using logistic regression.
RESULTS: The prevalence for carriage of ESBL/pAmpC-E was 4.5% (109/2432; 95% CI 3.7-5.4) ranging from 1.4% to 10.9% among the research centres. ESBL/pAmpC resistance genes were detected in Escherichia coli and Klebsiella pneumoniae isolates obtained from these 109 persons and the most common ESBL-resistance genes were blaCTX-M-15, blaCTX-M-14/17 and blaCTX-M-1, originating from 76 participants. Travel in the previous 12 months to Africa, Asia or Latin America (OR 2.82; 95% CI 1.71-4.63), having kept cows for a hobby in the previous 5 years (OR 3.77; 95% CI 1.22-11.64), usage of proton-pump inhibitors (OR 1.84; 95% CI 1.05-3.23), and living within 1000 m of a mink farm (OR 2.26; 95% CI 1.28-3.98) were identified as risk factors. Exposure to poultry was not identified as a risk factor.
CONCLUSIONS: Overall, living in close proximity to livestock animals and farms does not seem to be a risk factor for carriage of ESBL/pAmpC-E.
Copyright © 2016 European Society of Clinical Microbiology and Infectious Diseases. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  AmpC; Antimicrobial resistance; Environment; Extended-spectrum β-lactamases; Livestock farming; Prevalence; Risk factors; β-lactam resistance

Mesh:

Substances:

Year:  2016        PMID: 27773759     DOI: 10.1016/j.cmi.2016.10.013

Source DB:  PubMed          Journal:  Clin Microbiol Infect        ISSN: 1198-743X            Impact factor:   8.067


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Review 5.  The antimicrobial resistance travel tool, an interactive evidence-based educational tool to limit antimicrobial resistance spread.

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6.  Time to acquire and lose carriership of ESBL/pAmpC producing E. coli in humans in the Netherlands.

Authors:  Peter F M Teunis; Eric G Evers; Paul D Hengeveld; Cindy M Dierikx; Cornelia C H Wielders; Engeline van Duijkeren
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8.  Extended-spectrum β-lactamase, plasmid-mediated AmpC β-lactamase, fluoroquinolone resistance, and decreased susceptibility to carbapenems in Enterobacteriaceae: fecal carriage rates and associated risk factors in the community of Northern Cyprus.

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9.  Dynamics of faecal shedding of ESBL- or AmpC-producing Escherichia coli on dairy farms.

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Review 10.  Are There Effective Intervention Measures in Broiler Production against the ESBL/AmpC Producer Escherichia coli?

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Journal:  Pathogens       Date:  2021-05-15
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